Reflection of Light - Physics Notes
Reflection • Plane Mirrors • Image Formation • NCERT • PYQs

Reflection of Light

Master Laws of Reflection, Plane Mirrors, Regular and Diffuse Reflection, Image Formation, NCERT Concepts, NEET, JEE Main, JEE Advanced, IB Physics and IGCSE Physics.

CBSENEETJEE MainJEE AdvancedIB PhysicsIGCSEPYQs

Section 1: What is Reflection of Light?

Reflection of light is the phenomenon in which light returns to the same medium after striking a surface. When a ray of light falls on a polished mirror, a smooth metal surface, still water or any shiny boundary, a part of light comes back into the original medium. This returning of light is called reflection. The direction of the reflected ray is not random; it follows a definite geometrical rule, which is the law of reflection.

Historically, reflection was one of the earliest optical phenomena studied by ancient scholars because mirrors, water surfaces and polished metals were available long before modern lenses. The predictable behaviour of reflected light helped in the development of geometrical optics. In modern Physics, reflection is understood as the interaction of electromagnetic waves with a surface, but in Ray Optics we use rays to describe the path of light.

Reflection is present everywhere in daily life. We see our face in a mirror because light from the face reflects from the mirror and reaches the eye. We see objects around us because light from a source falls on objects and gets diffusely reflected in many directions. A polished surface produces regular reflection and can form a clear image, whereas a rough wall produces diffuse reflection and helps us see the wall from many directions.

Reflection from polished surfaces is orderly because the surface irregularities are very small compared with the scale of the incident beam. Parallel incident rays remain parallel after reflection. Reflection from rough surfaces is irregular because different parts of the surface have different normals. However, each tiny point still obeys the laws of reflection. This distinction is extremely important for understanding mirrors, visibility of objects, road safety, telescopes, periscopes, kaleidoscopes and many competitive examination problems.

Incident rayReflected rayNormaliri = r

Incident ray, reflected ray and normal lie in the same plane; angle of incidence equals angle of reflection.

Section 2: Laws of Reflection

First Law

The incident ray, reflected ray and normal at the point of incidence all lie in the same plane. The incident ray is the ray that strikes the surface. The reflected ray is the ray that returns from the surface. The normal is a perpendicular line drawn to the reflecting surface at the point of incidence.

Second Law

The angle of incidence is equal to the angle of reflection. The angles are always measured from the normal, not from the mirror surface.

i = r

For a plane reflecting surface, the normal provides the reference direction. The incident ray approaches the surface making angle i with the normal. The reflected ray leaves the surface making angle r with the normal. Experiments show that these two angles are equal for all reflecting surfaces. The physical significance is that reflection is symmetrical about the normal.

NCERT-style explanation: The laws of reflection are valid for both plane and curved surfaces. In curved surfaces, the normal is drawn along the radius at the point of incidence. These laws explain image formation by plane mirrors, spherical mirrors and many optical instruments.

Incident rayReflected rayNormaliri = r

Incident ray, reflected ray and normal lie in the same plane; angle of incidence equals angle of reflection.

Section 3: Types of Reflection

Regular Reflection

Regular reflection occurs from smooth and polished surfaces such as plane mirrors, polished metal and calm water. Parallel incident rays remain parallel after reflection. It produces clear images and is used in mirrors, telescopes, periscopes and laser-based systems.

Diffuse Reflection

Diffuse reflection occurs from rough surfaces such as paper, wall, cloth, road and unpolished wood. Parallel incident rays scatter in different directions because surface normals are different at different points. It helps us see non-luminous objects from different positions.

Regular reflectionDiffuse reflection
PointRegular ReflectionDiffuse Reflection
SurfaceSmooth and polishedRough and irregular
Reflected raysRemain parallelScatter in many directions
ImageClear image is formedNo clear image is formed
Example surfacePlane mirrorWall or paper
NormalNearly same for nearby pointsDifferent at different points
UseOptical instrumentsVisibility of objects
GlareCan produce glareReduces glare
Laser reflectionStrong and directedScattered
OrderOrdered reflectionIrregular reflection
Image informationPreservedNot preserved
Surface qualityPolished metalUnpolished wood
Daily useMirrorsSeeing books and walls
Eye comfortMay dazzleUsually comfortable
NameSpecular reflectionDiffuse reflection
Law validityObeys laws of reflectionAlso obeys laws locally

Section 4: Image Formation Basics

Real image
Formed when reflected or refracted rays actually meet. It can be obtained on a screen.
Virtual image
Formed when rays appear to meet. It cannot be obtained on a screen.
Magnification
Ratio of image size to object size. It tells whether image is enlarged, diminished or same size.
Lateral inversion
Left-right reversal observed in a plane mirror image.
Object-image relation
For plane mirror, image distance behind mirror equals object distance in front of mirror.
Image symmetry
Object and image are symmetric about the mirror plane.
Plane mirrorObjectVirtual imageddImage distance behind mirror = object distance in front of mirror.

Section 5: Reflection from Plane Surfaces

A plane mirror forms an image that is virtual, erect, laterally inverted and of the same size as the object. The image is formed as far behind the mirror as the object is in front of it. The mirror acts like a plane of symmetry between object and image.

Plane mirror distancedimage = dobject

Image is as far behind mirror as object is in front.

Magnificationm = +1

Image is erect and same size.

Mirror rotationθ → 2θ

If mirror rotates by θ, reflected ray rotates by 2θ.

Two mirrorsN = 360/θ − 1

For angle θ when 360/θ is an integer.

Periscopes use two plane mirrors inclined at 45° to change the path of light. Kaleidoscopes use multiple reflections between inclined mirrors to produce repeated patterns. In mirror rotation problems, the reflected ray turns through twice the angle turned by the mirror because the normal also rotates by the same angle.

Section 6: Important NCERT Concepts

Concept box
Angles in reflection are measured with the normal, not the surface.
Exam tip
Draw incident ray, reflected ray and normal before applying i=r.
Confused concept
Diffuse reflection does not violate laws of reflection. Each tiny surface element obeys them.
One-line revision
Plane mirror image is virtual, erect, same size and laterally inverted.
Frequently tested
Mirror rotation causes reflected ray rotation of 2θ.
Image motion
If object moves towards a plane mirror with speed v, image approaches mirror with speed v and object-image separation changes at 2v.

Section 7: Mathematical Concepts

Rotation of mirror

θ → 2θ

If a plane mirror rotates by angle θ while incident ray is fixed, the normal also rotates by θ. Since reflection is symmetric about the normal, the reflected ray rotates by 2θ.

Number of images

N = 360/θ − 1

For two plane mirrors inclined at angle θ, if 360/θ is an integer, the number of images is 360/θ − 1. Other cases depend on object position and parity.

Relative motion

For a plane mirror, image speed relative to mirror equals object speed relative to mirror, on the opposite side. Object-image separation often changes at twice the component of object velocity perpendicular to mirror.

Successive reflections

When a ray reflects from multiple mirrors, apply i=r at each mirror separately. Keep track of normals and direction after every reflection.

Section 8: Solved Numericals

NEET Numericals

NEET Numerical 1. A ray strikes a plane mirror at i = 35°. Find r.
NEET

Given: i=35°

Formula:

i=r
  1. r=35°
  2. Write answer with correct unit or description.
Final Answer: 35°
NEET Numerical 2. A mirror rotates by 12°. Find rotation of reflected ray.
NEET

Given: θ=12°

Formula:

rotation=2θ
  1. 2×12°=24°
  2. Write answer with correct unit or description.
Final Answer: 24°
NEET Numerical 3. Two mirrors are inclined at 60°. Find number of images.
NEET

Given: θ=60°

Formula:

N=360/θ−1
  1. N=360/60−1=6−1=5
  2. Write answer with correct unit or description.
Final Answer: 5 images
NEET Numerical 4. An object is 20 cm in front of plane mirror. Find image distance.
NEET

Given: object distance=20 cm

Formula:

dimage=dobject
  1. image is 20 cm behind mirror
  2. Write answer with correct unit or description.
Final Answer: 20 cm behind mirror
NEET Numerical 5. Object moves towards mirror at 3 m/s. Find speed of image towards object.
NEET

Given: v=3 m/s

Formula:

relative speed=2v
  1. 2×3=6 m/s
  2. Write answer with correct unit or description.
Final Answer: 6 m/s
NEET Numerical 6. A ray strikes a plane mirror at i = 35°. Find r.
NEET

Given: i=35°

Formula:

i=r
  1. r=35°
  2. Write answer with correct unit or description.
Final Answer: 35°
NEET Numerical 7. A mirror rotates by 12°. Find rotation of reflected ray.
NEET

Given: θ=12°

Formula:

rotation=2θ
  1. 2×12°=24°
  2. Write answer with correct unit or description.
Final Answer: 24°
NEET Numerical 8. Two mirrors are inclined at 60°. Find number of images.
NEET

Given: θ=60°

Formula:

N=360/θ−1
  1. N=360/60−1=6−1=5
  2. Write answer with correct unit or description.
Final Answer: 5 images
NEET Numerical 9. An object is 20 cm in front of plane mirror. Find image distance.
NEET

Given: object distance=20 cm

Formula:

dimage=dobject
  1. image is 20 cm behind mirror
  2. Write answer with correct unit or description.
Final Answer: 20 cm behind mirror
NEET Numerical 10. Object moves towards mirror at 3 m/s. Find speed of image towards object.
NEET

Given: v=3 m/s

Formula:

relative speed=2v
  1. 2×3=6 m/s
  2. Write answer with correct unit or description.
Final Answer: 6 m/s
NEET Numerical 11. A ray strikes a plane mirror at i = 35°. Find r.
NEET

Given: i=35°

Formula:

i=r
  1. r=35°
  2. Write answer with correct unit or description.
Final Answer: 35°
NEET Numerical 12. A mirror rotates by 12°. Find rotation of reflected ray.
NEET

Given: θ=12°

Formula:

rotation=2θ
  1. 2×12°=24°
  2. Write answer with correct unit or description.
Final Answer: 24°
NEET Numerical 13. Two mirrors are inclined at 60°. Find number of images.
NEET

Given: θ=60°

Formula:

N=360/θ−1
  1. N=360/60−1=6−1=5
  2. Write answer with correct unit or description.
Final Answer: 5 images
NEET Numerical 14. An object is 20 cm in front of plane mirror. Find image distance.
NEET

Given: object distance=20 cm

Formula:

dimage=dobject
  1. image is 20 cm behind mirror
  2. Write answer with correct unit or description.
Final Answer: 20 cm behind mirror
NEET Numerical 15. Object moves towards mirror at 3 m/s. Find speed of image towards object.
NEET

Given: v=3 m/s

Formula:

relative speed=2v
  1. 2×3=6 m/s
  2. Write answer with correct unit or description.
Final Answer: 6 m/s
NEET Numerical 16. A ray strikes a plane mirror at i = 35°. Find r.
NEET

Given: i=35°

Formula:

i=r
  1. r=35°
  2. Write answer with correct unit or description.
Final Answer: 35°
NEET Numerical 17. A mirror rotates by 12°. Find rotation of reflected ray.
NEET

Given: θ=12°

Formula:

rotation=2θ
  1. 2×12°=24°
  2. Write answer with correct unit or description.
Final Answer: 24°
NEET Numerical 18. Two mirrors are inclined at 60°. Find number of images.
NEET

Given: θ=60°

Formula:

N=360/θ−1
  1. N=360/60−1=6−1=5
  2. Write answer with correct unit or description.
Final Answer: 5 images
NEET Numerical 19. An object is 20 cm in front of plane mirror. Find image distance.
NEET

Given: object distance=20 cm

Formula:

dimage=dobject
  1. image is 20 cm behind mirror
  2. Write answer with correct unit or description.
Final Answer: 20 cm behind mirror
NEET Numerical 20. Object moves towards mirror at 3 m/s. Find speed of image towards object.
NEET

Given: v=3 m/s

Formula:

relative speed=2v
  1. 2×3=6 m/s
  2. Write answer with correct unit or description.
Final Answer: 6 m/s
NEET Numerical 21. A ray strikes a plane mirror at i = 35°. Find r.
NEET

Given: i=35°

Formula:

i=r
  1. r=35°
  2. Write answer with correct unit or description.
Final Answer: 35°
NEET Numerical 22. A mirror rotates by 12°. Find rotation of reflected ray.
NEET

Given: θ=12°

Formula:

rotation=2θ
  1. 2×12°=24°
  2. Write answer with correct unit or description.
Final Answer: 24°
NEET Numerical 23. Two mirrors are inclined at 60°. Find number of images.
NEET

Given: θ=60°

Formula:

N=360/θ−1
  1. N=360/60−1=6−1=5
  2. Write answer with correct unit or description.
Final Answer: 5 images
NEET Numerical 24. An object is 20 cm in front of plane mirror. Find image distance.
NEET

Given: object distance=20 cm

Formula:

dimage=dobject
  1. image is 20 cm behind mirror
  2. Write answer with correct unit or description.
Final Answer: 20 cm behind mirror
NEET Numerical 25. Object moves towards mirror at 3 m/s. Find speed of image towards object.
NEET

Given: v=3 m/s

Formula:

relative speed=2v
  1. 2×3=6 m/s
  2. Write answer with correct unit or description.
Final Answer: 6 m/s

JEE Main Numericals

JEE Main Numerical 26. A ray strikes a plane mirror at i = 35°. Find r.
JEE Main

Given: i=35°

Formula:

i=r
  1. r=35°
  2. Write answer with correct unit or description.
Final Answer: 35°
JEE Main Numerical 27. A mirror rotates by 12°. Find rotation of reflected ray.
JEE Main

Given: θ=12°

Formula:

rotation=2θ
  1. 2×12°=24°
  2. Write answer with correct unit or description.
Final Answer: 24°
JEE Main Numerical 28. Two mirrors are inclined at 60°. Find number of images.
JEE Main

Given: θ=60°

Formula:

N=360/θ−1
  1. N=360/60−1=6−1=5
  2. Write answer with correct unit or description.
Final Answer: 5 images
JEE Main Numerical 29. An object is 20 cm in front of plane mirror. Find image distance.
JEE Main

Given: object distance=20 cm

Formula:

dimage=dobject
  1. image is 20 cm behind mirror
  2. Write answer with correct unit or description.
Final Answer: 20 cm behind mirror
JEE Main Numerical 30. Object moves towards mirror at 3 m/s. Find speed of image towards object.
JEE Main

Given: v=3 m/s

Formula:

relative speed=2v
  1. 2×3=6 m/s
  2. Write answer with correct unit or description.
Final Answer: 6 m/s
JEE Main Numerical 31. A ray strikes a plane mirror at i = 35°. Find r.
JEE Main

Given: i=35°

Formula:

i=r
  1. r=35°
  2. Write answer with correct unit or description.
Final Answer: 35°
JEE Main Numerical 32. A mirror rotates by 12°. Find rotation of reflected ray.
JEE Main

Given: θ=12°

Formula:

rotation=2θ
  1. 2×12°=24°
  2. Write answer with correct unit or description.
Final Answer: 24°
JEE Main Numerical 33. Two mirrors are inclined at 60°. Find number of images.
JEE Main

Given: θ=60°

Formula:

N=360/θ−1
  1. N=360/60−1=6−1=5
  2. Write answer with correct unit or description.
Final Answer: 5 images
JEE Main Numerical 34. An object is 20 cm in front of plane mirror. Find image distance.
JEE Main

Given: object distance=20 cm

Formula:

dimage=dobject
  1. image is 20 cm behind mirror
  2. Write answer with correct unit or description.
Final Answer: 20 cm behind mirror
JEE Main Numerical 35. Object moves towards mirror at 3 m/s. Find speed of image towards object.
JEE Main

Given: v=3 m/s

Formula:

relative speed=2v
  1. 2×3=6 m/s
  2. Write answer with correct unit or description.
Final Answer: 6 m/s
JEE Main Numerical 36. A ray strikes a plane mirror at i = 35°. Find r.
JEE Main

Given: i=35°

Formula:

i=r
  1. r=35°
  2. Write answer with correct unit or description.
Final Answer: 35°
JEE Main Numerical 37. A mirror rotates by 12°. Find rotation of reflected ray.
JEE Main

Given: θ=12°

Formula:

rotation=2θ
  1. 2×12°=24°
  2. Write answer with correct unit or description.
Final Answer: 24°
JEE Main Numerical 38. Two mirrors are inclined at 60°. Find number of images.
JEE Main

Given: θ=60°

Formula:

N=360/θ−1
  1. N=360/60−1=6−1=5
  2. Write answer with correct unit or description.
Final Answer: 5 images
JEE Main Numerical 39. An object is 20 cm in front of plane mirror. Find image distance.
JEE Main

Given: object distance=20 cm

Formula:

dimage=dobject
  1. image is 20 cm behind mirror
  2. Write answer with correct unit or description.
Final Answer: 20 cm behind mirror
JEE Main Numerical 40. Object moves towards mirror at 3 m/s. Find speed of image towards object.
JEE Main

Given: v=3 m/s

Formula:

relative speed=2v
  1. 2×3=6 m/s
  2. Write answer with correct unit or description.
Final Answer: 6 m/s
JEE Main Numerical 41. A ray strikes a plane mirror at i = 35°. Find r.
JEE Main

Given: i=35°

Formula:

i=r
  1. r=35°
  2. Write answer with correct unit or description.
Final Answer: 35°
JEE Main Numerical 42. A mirror rotates by 12°. Find rotation of reflected ray.
JEE Main

Given: θ=12°

Formula:

rotation=2θ
  1. 2×12°=24°
  2. Write answer with correct unit or description.
Final Answer: 24°
JEE Main Numerical 43. Two mirrors are inclined at 60°. Find number of images.
JEE Main

Given: θ=60°

Formula:

N=360/θ−1
  1. N=360/60−1=6−1=5
  2. Write answer with correct unit or description.
Final Answer: 5 images
JEE Main Numerical 44. An object is 20 cm in front of plane mirror. Find image distance.
JEE Main

Given: object distance=20 cm

Formula:

dimage=dobject
  1. image is 20 cm behind mirror
  2. Write answer with correct unit or description.
Final Answer: 20 cm behind mirror
JEE Main Numerical 45. Object moves towards mirror at 3 m/s. Find speed of image towards object.
JEE Main

Given: v=3 m/s

Formula:

relative speed=2v
  1. 2×3=6 m/s
  2. Write answer with correct unit or description.
Final Answer: 6 m/s

JEE Advanced Numericals

JEE Advanced Numerical 46. A ray strikes a plane mirror at i = 35°. Find r.
JEE Advanced

Given: i=35°

Formula:

i=r
  1. r=35°
  2. Write answer with correct unit or description.
Final Answer: 35°
JEE Advanced Numerical 47. A mirror rotates by 12°. Find rotation of reflected ray.
JEE Advanced

Given: θ=12°

Formula:

rotation=2θ
  1. 2×12°=24°
  2. Write answer with correct unit or description.
Final Answer: 24°
JEE Advanced Numerical 48. Two mirrors are inclined at 60°. Find number of images.
JEE Advanced

Given: θ=60°

Formula:

N=360/θ−1
  1. N=360/60−1=6−1=5
  2. Write answer with correct unit or description.
Final Answer: 5 images
JEE Advanced Numerical 49. An object is 20 cm in front of plane mirror. Find image distance.
JEE Advanced

Given: object distance=20 cm

Formula:

dimage=dobject
  1. image is 20 cm behind mirror
  2. Write answer with correct unit or description.
Final Answer: 20 cm behind mirror
JEE Advanced Numerical 50. Object moves towards mirror at 3 m/s. Find speed of image towards object.
JEE Advanced

Given: v=3 m/s

Formula:

relative speed=2v
  1. 2×3=6 m/s
  2. Write answer with correct unit or description.
Final Answer: 6 m/s
JEE Advanced Numerical 51. A ray strikes a plane mirror at i = 35°. Find r.
JEE Advanced

Given: i=35°

Formula:

i=r
  1. r=35°
  2. Write answer with correct unit or description.
Final Answer: 35°
JEE Advanced Numerical 52. A mirror rotates by 12°. Find rotation of reflected ray.
JEE Advanced

Given: θ=12°

Formula:

rotation=2θ
  1. 2×12°=24°
  2. Write answer with correct unit or description.
Final Answer: 24°
JEE Advanced Numerical 53. Two mirrors are inclined at 60°. Find number of images.
JEE Advanced

Given: θ=60°

Formula:

N=360/θ−1
  1. N=360/60−1=6−1=5
  2. Write answer with correct unit or description.
Final Answer: 5 images
JEE Advanced Numerical 54. An object is 20 cm in front of plane mirror. Find image distance.
JEE Advanced

Given: object distance=20 cm

Formula:

dimage=dobject
  1. image is 20 cm behind mirror
  2. Write answer with correct unit or description.
Final Answer: 20 cm behind mirror
JEE Advanced Numerical 55. Object moves towards mirror at 3 m/s. Find speed of image towards object.
JEE Advanced

Given: v=3 m/s

Formula:

relative speed=2v
  1. 2×3=6 m/s
  2. Write answer with correct unit or description.
Final Answer: 6 m/s
JEE Advanced Numerical 56. A ray strikes a plane mirror at i = 35°. Find r.
JEE Advanced

Given: i=35°

Formula:

i=r
  1. r=35°
  2. Write answer with correct unit or description.
Final Answer: 35°
JEE Advanced Numerical 57. A mirror rotates by 12°. Find rotation of reflected ray.
JEE Advanced

Given: θ=12°

Formula:

rotation=2θ
  1. 2×12°=24°
  2. Write answer with correct unit or description.
Final Answer: 24°
JEE Advanced Numerical 58. Two mirrors are inclined at 60°. Find number of images.
JEE Advanced

Given: θ=60°

Formula:

N=360/θ−1
  1. N=360/60−1=6−1=5
  2. Write answer with correct unit or description.
Final Answer: 5 images
JEE Advanced Numerical 59. An object is 20 cm in front of plane mirror. Find image distance.
JEE Advanced

Given: object distance=20 cm

Formula:

dimage=dobject
  1. image is 20 cm behind mirror
  2. Write answer with correct unit or description.
Final Answer: 20 cm behind mirror
JEE Advanced Numerical 60. Object moves towards mirror at 3 m/s. Find speed of image towards object.
JEE Advanced

Given: v=3 m/s

Formula:

relative speed=2v
  1. 2×3=6 m/s
  2. Write answer with correct unit or description.
Final Answer: 6 m/s

Section 9: JEE Advanced Challenge Problems

Advanced Reflection Problems based on multiple mirrors, successive reflections, mirror rotation and relative image motion.

Advanced Reflection Problem 1. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 2. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 3. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 4. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 5. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 6. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 7. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 8. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 9. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 10. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 11. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 12. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 13. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 14. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 15. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 16. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 17. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 18. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 19. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.
Advanced Reflection Problem 20. Competitive-level problem on multiple mirrors and reflected ray direction.
JEE Advanced

Approach: Draw each mirror, mark normal, apply i=r at every reflection and track image position using symmetry.

  1. Identify mirror geometry and angle between mirrors.
  2. Use N=360/θ−1 when applicable.
  3. For rotation, use reflected ray rotation = 2θ.
  4. For relative motion, resolve velocity perpendicular to mirror.
Solved using multiple reflection geometry.

Section 10: Previous Year Questions

CBSE PYQs

CBSE PYQs 1. State laws of reflection.
CBSE

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
CBSE PYQs 2. Why diffuse reflection helps us see objects?
CBSE

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
CBSE PYQs 3. What is lateral inversion?
CBSE

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
CBSE PYQs 4. Why image in plane mirror is virtual?
CBSE

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
CBSE PYQs 5. What happens to reflected ray if mirror rotates by θ?
CBSE

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.
CBSE PYQs 6. Find number of images for two mirrors at 90°.
CBSE

N=360/90−1=3.

Answer: N=360/90−1=3.
CBSE PYQs 7. What is regular reflection?
CBSE

Reflection from smooth surface where parallel rays remain parallel.

Answer: Reflection from smooth surface where parallel rays remain parallel.
CBSE PYQs 8. Do laws of reflection hold for rough surfaces?
CBSE

Yes, at each small surface element the laws are obeyed.

Answer: Yes, at each small surface element the laws are obeyed.
CBSE PYQs 9. Why are mirrors used in telescopes?
CBSE

They can collect and reflect light to form images without chromatic aberration.

Answer: They can collect and reflect light to form images without chromatic aberration.
CBSE PYQs 10. What is magnification of plane mirror?
CBSE

m=+1.

Answer: m=+1.
CBSE PYQs 11. State laws of reflection.
CBSE

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
CBSE PYQs 12. Why diffuse reflection helps us see objects?
CBSE

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
CBSE PYQs 13. What is lateral inversion?
CBSE

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
CBSE PYQs 14. Why image in plane mirror is virtual?
CBSE

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
CBSE PYQs 15. What happens to reflected ray if mirror rotates by θ?
CBSE

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.

NEET PYQs

NEET PYQs 1. State laws of reflection.
NEET

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
NEET PYQs 2. Why diffuse reflection helps us see objects?
NEET

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
NEET PYQs 3. What is lateral inversion?
NEET

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
NEET PYQs 4. Why image in plane mirror is virtual?
NEET

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
NEET PYQs 5. What happens to reflected ray if mirror rotates by θ?
NEET

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.
NEET PYQs 6. Find number of images for two mirrors at 90°.
NEET

N=360/90−1=3.

Answer: N=360/90−1=3.
NEET PYQs 7. What is regular reflection?
NEET

Reflection from smooth surface where parallel rays remain parallel.

Answer: Reflection from smooth surface where parallel rays remain parallel.
NEET PYQs 8. Do laws of reflection hold for rough surfaces?
NEET

Yes, at each small surface element the laws are obeyed.

Answer: Yes, at each small surface element the laws are obeyed.
NEET PYQs 9. Why are mirrors used in telescopes?
NEET

They can collect and reflect light to form images without chromatic aberration.

Answer: They can collect and reflect light to form images without chromatic aberration.
NEET PYQs 10. What is magnification of plane mirror?
NEET

m=+1.

Answer: m=+1.
NEET PYQs 11. State laws of reflection.
NEET

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
NEET PYQs 12. Why diffuse reflection helps us see objects?
NEET

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
NEET PYQs 13. What is lateral inversion?
NEET

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
NEET PYQs 14. Why image in plane mirror is virtual?
NEET

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
NEET PYQs 15. What happens to reflected ray if mirror rotates by θ?
NEET

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.
NEET PYQs 16. Find number of images for two mirrors at 90°.
NEET

N=360/90−1=3.

Answer: N=360/90−1=3.
NEET PYQs 17. What is regular reflection?
NEET

Reflection from smooth surface where parallel rays remain parallel.

Answer: Reflection from smooth surface where parallel rays remain parallel.
NEET PYQs 18. Do laws of reflection hold for rough surfaces?
NEET

Yes, at each small surface element the laws are obeyed.

Answer: Yes, at each small surface element the laws are obeyed.
NEET PYQs 19. Why are mirrors used in telescopes?
NEET

They can collect and reflect light to form images without chromatic aberration.

Answer: They can collect and reflect light to form images without chromatic aberration.
NEET PYQs 20. What is magnification of plane mirror?
NEET

m=+1.

Answer: m=+1.

JEE Main PYQs

JEE Main PYQs 1. State laws of reflection.
JEE Main

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
JEE Main PYQs 2. Why diffuse reflection helps us see objects?
JEE Main

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
JEE Main PYQs 3. What is lateral inversion?
JEE Main

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
JEE Main PYQs 4. Why image in plane mirror is virtual?
JEE Main

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
JEE Main PYQs 5. What happens to reflected ray if mirror rotates by θ?
JEE Main

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.
JEE Main PYQs 6. Find number of images for two mirrors at 90°.
JEE Main

N=360/90−1=3.

Answer: N=360/90−1=3.
JEE Main PYQs 7. What is regular reflection?
JEE Main

Reflection from smooth surface where parallel rays remain parallel.

Answer: Reflection from smooth surface where parallel rays remain parallel.
JEE Main PYQs 8. Do laws of reflection hold for rough surfaces?
JEE Main

Yes, at each small surface element the laws are obeyed.

Answer: Yes, at each small surface element the laws are obeyed.
JEE Main PYQs 9. Why are mirrors used in telescopes?
JEE Main

They can collect and reflect light to form images without chromatic aberration.

Answer: They can collect and reflect light to form images without chromatic aberration.
JEE Main PYQs 10. What is magnification of plane mirror?
JEE Main

m=+1.

Answer: m=+1.
JEE Main PYQs 11. State laws of reflection.
JEE Main

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
JEE Main PYQs 12. Why diffuse reflection helps us see objects?
JEE Main

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
JEE Main PYQs 13. What is lateral inversion?
JEE Main

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
JEE Main PYQs 14. Why image in plane mirror is virtual?
JEE Main

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
JEE Main PYQs 15. What happens to reflected ray if mirror rotates by θ?
JEE Main

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.
JEE Main PYQs 16. Find number of images for two mirrors at 90°.
JEE Main

N=360/90−1=3.

Answer: N=360/90−1=3.
JEE Main PYQs 17. What is regular reflection?
JEE Main

Reflection from smooth surface where parallel rays remain parallel.

Answer: Reflection from smooth surface where parallel rays remain parallel.
JEE Main PYQs 18. Do laws of reflection hold for rough surfaces?
JEE Main

Yes, at each small surface element the laws are obeyed.

Answer: Yes, at each small surface element the laws are obeyed.
JEE Main PYQs 19. Why are mirrors used in telescopes?
JEE Main

They can collect and reflect light to form images without chromatic aberration.

Answer: They can collect and reflect light to form images without chromatic aberration.
JEE Main PYQs 20. What is magnification of plane mirror?
JEE Main

m=+1.

Answer: m=+1.

JEE Advanced PYQs

JEE Advanced PYQs 1. State laws of reflection.
JEE Advanced

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
JEE Advanced PYQs 2. Why diffuse reflection helps us see objects?
JEE Advanced

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
JEE Advanced PYQs 3. What is lateral inversion?
JEE Advanced

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
JEE Advanced PYQs 4. Why image in plane mirror is virtual?
JEE Advanced

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
JEE Advanced PYQs 5. What happens to reflected ray if mirror rotates by θ?
JEE Advanced

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.
JEE Advanced PYQs 6. Find number of images for two mirrors at 90°.
JEE Advanced

N=360/90−1=3.

Answer: N=360/90−1=3.
JEE Advanced PYQs 7. What is regular reflection?
JEE Advanced

Reflection from smooth surface where parallel rays remain parallel.

Answer: Reflection from smooth surface where parallel rays remain parallel.
JEE Advanced PYQs 8. Do laws of reflection hold for rough surfaces?
JEE Advanced

Yes, at each small surface element the laws are obeyed.

Answer: Yes, at each small surface element the laws are obeyed.
JEE Advanced PYQs 9. Why are mirrors used in telescopes?
JEE Advanced

They can collect and reflect light to form images without chromatic aberration.

Answer: They can collect and reflect light to form images without chromatic aberration.
JEE Advanced PYQs 10. What is magnification of plane mirror?
JEE Advanced

m=+1.

Answer: m=+1.
JEE Advanced PYQs 11. State laws of reflection.
JEE Advanced

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
JEE Advanced PYQs 12. Why diffuse reflection helps us see objects?
JEE Advanced

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
JEE Advanced PYQs 13. What is lateral inversion?
JEE Advanced

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
JEE Advanced PYQs 14. Why image in plane mirror is virtual?
JEE Advanced

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
JEE Advanced PYQs 15. What happens to reflected ray if mirror rotates by θ?
JEE Advanced

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.
JEE Advanced PYQs 16. Find number of images for two mirrors at 90°.
JEE Advanced

N=360/90−1=3.

Answer: N=360/90−1=3.
JEE Advanced PYQs 17. What is regular reflection?
JEE Advanced

Reflection from smooth surface where parallel rays remain parallel.

Answer: Reflection from smooth surface where parallel rays remain parallel.
JEE Advanced PYQs 18. Do laws of reflection hold for rough surfaces?
JEE Advanced

Yes, at each small surface element the laws are obeyed.

Answer: Yes, at each small surface element the laws are obeyed.
JEE Advanced PYQs 19. Why are mirrors used in telescopes?
JEE Advanced

They can collect and reflect light to form images without chromatic aberration.

Answer: They can collect and reflect light to form images without chromatic aberration.
JEE Advanced PYQs 20. What is magnification of plane mirror?
JEE Advanced

m=+1.

Answer: m=+1.

IB Physics Questions

IB Physics Questions 1. State laws of reflection.
IB Physics Questions

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
IB Physics Questions 2. Why diffuse reflection helps us see objects?
IB Physics Questions

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
IB Physics Questions 3. What is lateral inversion?
IB Physics Questions

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
IB Physics Questions 4. Why image in plane mirror is virtual?
IB Physics Questions

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
IB Physics Questions 5. What happens to reflected ray if mirror rotates by θ?
IB Physics Questions

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.
IB Physics Questions 6. Find number of images for two mirrors at 90°.
IB Physics Questions

N=360/90−1=3.

Answer: N=360/90−1=3.
IB Physics Questions 7. What is regular reflection?
IB Physics Questions

Reflection from smooth surface where parallel rays remain parallel.

Answer: Reflection from smooth surface where parallel rays remain parallel.
IB Physics Questions 8. Do laws of reflection hold for rough surfaces?
IB Physics Questions

Yes, at each small surface element the laws are obeyed.

Answer: Yes, at each small surface element the laws are obeyed.
IB Physics Questions 9. Why are mirrors used in telescopes?
IB Physics Questions

They can collect and reflect light to form images without chromatic aberration.

Answer: They can collect and reflect light to form images without chromatic aberration.
IB Physics Questions 10. What is magnification of plane mirror?
IB Physics Questions

m=+1.

Answer: m=+1.
IB Physics Questions 11. State laws of reflection.
IB Physics Questions

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
IB Physics Questions 12. Why diffuse reflection helps us see objects?
IB Physics Questions

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
IB Physics Questions 13. What is lateral inversion?
IB Physics Questions

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
IB Physics Questions 14. Why image in plane mirror is virtual?
IB Physics Questions

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
IB Physics Questions 15. What happens to reflected ray if mirror rotates by θ?
IB Physics Questions

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.

IGCSE Physics Questions

IGCSE Physics Questions 1. State laws of reflection.
IGCSE Physics Questions

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
IGCSE Physics Questions 2. Why diffuse reflection helps us see objects?
IGCSE Physics Questions

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
IGCSE Physics Questions 3. What is lateral inversion?
IGCSE Physics Questions

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
IGCSE Physics Questions 4. Why image in plane mirror is virtual?
IGCSE Physics Questions

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
IGCSE Physics Questions 5. What happens to reflected ray if mirror rotates by θ?
IGCSE Physics Questions

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.
IGCSE Physics Questions 6. Find number of images for two mirrors at 90°.
IGCSE Physics Questions

N=360/90−1=3.

Answer: N=360/90−1=3.
IGCSE Physics Questions 7. What is regular reflection?
IGCSE Physics Questions

Reflection from smooth surface where parallel rays remain parallel.

Answer: Reflection from smooth surface where parallel rays remain parallel.
IGCSE Physics Questions 8. Do laws of reflection hold for rough surfaces?
IGCSE Physics Questions

Yes, at each small surface element the laws are obeyed.

Answer: Yes, at each small surface element the laws are obeyed.
IGCSE Physics Questions 9. Why are mirrors used in telescopes?
IGCSE Physics Questions

They can collect and reflect light to form images without chromatic aberration.

Answer: They can collect and reflect light to form images without chromatic aberration.
IGCSE Physics Questions 10. What is magnification of plane mirror?
IGCSE Physics Questions

m=+1.

Answer: m=+1.
IGCSE Physics Questions 11. State laws of reflection.
IGCSE Physics Questions

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
IGCSE Physics Questions 12. Why diffuse reflection helps us see objects?
IGCSE Physics Questions

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
IGCSE Physics Questions 13. What is lateral inversion?
IGCSE Physics Questions

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
IGCSE Physics Questions 14. Why image in plane mirror is virtual?
IGCSE Physics Questions

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
IGCSE Physics Questions 15. What happens to reflected ray if mirror rotates by θ?
IGCSE Physics Questions

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.

A-Level Physics Questions

A-Level Physics Questions 1. State laws of reflection.
A-Level Physics Questions

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
A-Level Physics Questions 2. Why diffuse reflection helps us see objects?
A-Level Physics Questions

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
A-Level Physics Questions 3. What is lateral inversion?
A-Level Physics Questions

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
A-Level Physics Questions 4. Why image in plane mirror is virtual?
A-Level Physics Questions

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
A-Level Physics Questions 5. What happens to reflected ray if mirror rotates by θ?
A-Level Physics Questions

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.
A-Level Physics Questions 6. Find number of images for two mirrors at 90°.
A-Level Physics Questions

N=360/90−1=3.

Answer: N=360/90−1=3.
A-Level Physics Questions 7. What is regular reflection?
A-Level Physics Questions

Reflection from smooth surface where parallel rays remain parallel.

Answer: Reflection from smooth surface where parallel rays remain parallel.
A-Level Physics Questions 8. Do laws of reflection hold for rough surfaces?
A-Level Physics Questions

Yes, at each small surface element the laws are obeyed.

Answer: Yes, at each small surface element the laws are obeyed.
A-Level Physics Questions 9. Why are mirrors used in telescopes?
A-Level Physics Questions

They can collect and reflect light to form images without chromatic aberration.

Answer: They can collect and reflect light to form images without chromatic aberration.
A-Level Physics Questions 10. What is magnification of plane mirror?
A-Level Physics Questions

m=+1.

Answer: m=+1.
A-Level Physics Questions 11. State laws of reflection.
A-Level Physics Questions

Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.

Answer: Incident ray, reflected ray and normal lie in same plane, and angle of incidence equals angle of reflection.
A-Level Physics Questions 12. Why diffuse reflection helps us see objects?
A-Level Physics Questions

It scatters light in many directions so light can enter the eye from many positions.

Answer: It scatters light in many directions so light can enter the eye from many positions.
A-Level Physics Questions 13. What is lateral inversion?
A-Level Physics Questions

It is left-right reversal in plane mirror image.

Answer: It is left-right reversal in plane mirror image.
A-Level Physics Questions 14. Why image in plane mirror is virtual?
A-Level Physics Questions

Reflected rays do not actually meet; they appear to come from behind the mirror.

Answer: Reflected rays do not actually meet; they appear to come from behind the mirror.
A-Level Physics Questions 15. What happens to reflected ray if mirror rotates by θ?
A-Level Physics Questions

The reflected ray rotates by 2θ.

Answer: The reflected ray rotates by 2θ.

Section 11: Conceptual Questions

Conceptual Question 1. Why can we see objects?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 2. Why does diffuse reflection occur?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 3. Why is image laterally inverted?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 4. Why does mirror obey reflection laws?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 5. Why are mirrors used in telescopes?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 6. Why is plane mirror image virtual?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 7. Why are angles measured from normal?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 8. Why polished surfaces form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 9. Why rough surfaces do not form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 10. Why reflected ray rotates by twice mirror rotation?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 11. Why can we see objects?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 12. Why does diffuse reflection occur?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 13. Why is image laterally inverted?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 14. Why does mirror obey reflection laws?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 15. Why are mirrors used in telescopes?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 16. Why is plane mirror image virtual?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 17. Why are angles measured from normal?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 18. Why polished surfaces form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 19. Why rough surfaces do not form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 20. Why reflected ray rotates by twice mirror rotation?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 21. Why can we see objects?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 22. Why does diffuse reflection occur?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 23. Why is image laterally inverted?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 24. Why does mirror obey reflection laws?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 25. Why are mirrors used in telescopes?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 26. Why is plane mirror image virtual?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 27. Why are angles measured from normal?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 28. Why polished surfaces form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 29. Why rough surfaces do not form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 30. Why reflected ray rotates by twice mirror rotation?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 31. Why can we see objects?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 32. Why does diffuse reflection occur?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 33. Why is image laterally inverted?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 34. Why does mirror obey reflection laws?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 35. Why are mirrors used in telescopes?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 36. Why is plane mirror image virtual?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 37. Why are angles measured from normal?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 38. Why polished surfaces form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 39. Why rough surfaces do not form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 40. Why reflected ray rotates by twice mirror rotation?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 41. Why can we see objects?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 42. Why does diffuse reflection occur?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 43. Why is image laterally inverted?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 44. Why does mirror obey reflection laws?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 45. Why are mirrors used in telescopes?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 46. Why is plane mirror image virtual?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 47. Why are angles measured from normal?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 48. Why polished surfaces form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 49. Why rough surfaces do not form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 50. Why reflected ray rotates by twice mirror rotation?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 51. Why can we see objects?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 52. Why does diffuse reflection occur?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 53. Why is image laterally inverted?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 54. Why does mirror obey reflection laws?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 55. Why are mirrors used in telescopes?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 56. Why is plane mirror image virtual?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 57. Why are angles measured from normal?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 58. Why polished surfaces form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 59. Why rough surfaces do not form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 60. Why reflected ray rotates by twice mirror rotation?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 61. Why can we see objects?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 62. Why does diffuse reflection occur?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 63. Why is image laterally inverted?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 64. Why does mirror obey reflection laws?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 65. Why are mirrors used in telescopes?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 66. Why is plane mirror image virtual?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 67. Why are angles measured from normal?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 68. Why polished surfaces form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 69. Why rough surfaces do not form clear images?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 70. Why reflected ray rotates by twice mirror rotation?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 71. Why can we see objects?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 72. Why does diffuse reflection occur?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 73. Why is image laterally inverted?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 74. Why does mirror obey reflection laws?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.
Conceptual Question 75. Why are mirrors used in telescopes?
Conceptual

The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Answer: The concept is explained using the laws of reflection, surface normal, ray geometry and the difference between regular and diffuse reflection. In exams, draw the normal and apply i=r clearly.

Section 12: Assertion Reason Questions

Assertion-Reason 1. Assertion: Angle of incidence equals angle of reflection. Reason: Reflection is symmetric about the normal.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 2. Assertion: Diffuse reflection does not obey reflection laws. Reason: Rough surfaces have many normals.
Assertion-Reason

Answer: Assertion is false; laws are obeyed locally at every small surface element.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Assertion is false; laws are obeyed locally at every small surface element.
Assertion-Reason 3. Assertion: Plane mirror image is virtual. Reason: Reflected rays appear to meet behind the mirror.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 4. Assertion: Rotating mirror by θ rotates reflected ray by 2θ. Reason: Normal rotates by θ and reflection is symmetric.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 5. Assertion: Plane mirror magnification is +1. Reason: Image is erect and same size as object.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 6. Assertion: Angle of incidence equals angle of reflection. Reason: Reflection is symmetric about the normal.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 7. Assertion: Diffuse reflection does not obey reflection laws. Reason: Rough surfaces have many normals.
Assertion-Reason

Answer: Assertion is false; laws are obeyed locally at every small surface element.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Assertion is false; laws are obeyed locally at every small surface element.
Assertion-Reason 8. Assertion: Plane mirror image is virtual. Reason: Reflected rays appear to meet behind the mirror.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 9. Assertion: Rotating mirror by θ rotates reflected ray by 2θ. Reason: Normal rotates by θ and reflection is symmetric.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 10. Assertion: Plane mirror magnification is +1. Reason: Image is erect and same size as object.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 11. Assertion: Angle of incidence equals angle of reflection. Reason: Reflection is symmetric about the normal.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 12. Assertion: Diffuse reflection does not obey reflection laws. Reason: Rough surfaces have many normals.
Assertion-Reason

Answer: Assertion is false; laws are obeyed locally at every small surface element.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Assertion is false; laws are obeyed locally at every small surface element.
Assertion-Reason 13. Assertion: Plane mirror image is virtual. Reason: Reflected rays appear to meet behind the mirror.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 14. Assertion: Rotating mirror by θ rotates reflected ray by 2θ. Reason: Normal rotates by θ and reflection is symmetric.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 15. Assertion: Plane mirror magnification is +1. Reason: Image is erect and same size as object.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 16. Assertion: Angle of incidence equals angle of reflection. Reason: Reflection is symmetric about the normal.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 17. Assertion: Diffuse reflection does not obey reflection laws. Reason: Rough surfaces have many normals.
Assertion-Reason

Answer: Assertion is false; laws are obeyed locally at every small surface element.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Assertion is false; laws are obeyed locally at every small surface element.
Assertion-Reason 18. Assertion: Plane mirror image is virtual. Reason: Reflected rays appear to meet behind the mirror.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 19. Assertion: Rotating mirror by θ rotates reflected ray by 2θ. Reason: Normal rotates by θ and reflection is symmetric.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 20. Assertion: Plane mirror magnification is +1. Reason: Image is erect and same size as object.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 21. Assertion: Angle of incidence equals angle of reflection. Reason: Reflection is symmetric about the normal.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 22. Assertion: Diffuse reflection does not obey reflection laws. Reason: Rough surfaces have many normals.
Assertion-Reason

Answer: Assertion is false; laws are obeyed locally at every small surface element.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Assertion is false; laws are obeyed locally at every small surface element.
Assertion-Reason 23. Assertion: Plane mirror image is virtual. Reason: Reflected rays appear to meet behind the mirror.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 24. Assertion: Rotating mirror by θ rotates reflected ray by 2θ. Reason: Normal rotates by θ and reflection is symmetric.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.
Assertion-Reason 25. Assertion: Plane mirror magnification is +1. Reason: Image is erect and same size as object.
Assertion-Reason

Answer: Both are true and Reason correctly explains Assertion.

Explanation: Check truth of both statements, then test whether reason explains assertion through reflection geometry.

Both are true and Reason correctly explains Assertion.

Section 13: Case Study Questions

Case Study 1: Rear-view mirror

Scenario: Rear-view mirror uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Rear-view mirror.

Case 1.1. Explain reflection point 1 for Rear-view mirror.
Case Study

Rear-view mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Rear-view mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 1.2. Explain reflection point 2 for Rear-view mirror.
Case Study

Rear-view mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Rear-view mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 1.3. Explain reflection point 3 for Rear-view mirror.
Case Study

Rear-view mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Rear-view mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 1.4. Explain reflection point 4 for Rear-view mirror.
Case Study

Rear-view mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Rear-view mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 1.5. Explain reflection point 5 for Rear-view mirror.
Case Study

Rear-view mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Rear-view mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 2: Periscope

Scenario: Periscope uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Periscope.

Case 2.1. Explain reflection point 1 for Periscope.
Case Study

Periscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Periscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 2.2. Explain reflection point 2 for Periscope.
Case Study

Periscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Periscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 2.3. Explain reflection point 3 for Periscope.
Case Study

Periscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Periscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 2.4. Explain reflection point 4 for Periscope.
Case Study

Periscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Periscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 2.5. Explain reflection point 5 for Periscope.
Case Study

Periscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Periscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 3: Kaleidoscope

Scenario: Kaleidoscope uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Kaleidoscope.

Case 3.1. Explain reflection point 1 for Kaleidoscope.
Case Study

Kaleidoscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Kaleidoscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 3.2. Explain reflection point 2 for Kaleidoscope.
Case Study

Kaleidoscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Kaleidoscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 3.3. Explain reflection point 3 for Kaleidoscope.
Case Study

Kaleidoscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Kaleidoscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 3.4. Explain reflection point 4 for Kaleidoscope.
Case Study

Kaleidoscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Kaleidoscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 3.5. Explain reflection point 5 for Kaleidoscope.
Case Study

Kaleidoscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Kaleidoscope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 4: Dressing mirror

Scenario: Dressing mirror uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Dressing mirror.

Case 4.1. Explain reflection point 1 for Dressing mirror.
Case Study

Dressing mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Dressing mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 4.2. Explain reflection point 2 for Dressing mirror.
Case Study

Dressing mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Dressing mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 4.3. Explain reflection point 3 for Dressing mirror.
Case Study

Dressing mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Dressing mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 4.4. Explain reflection point 4 for Dressing mirror.
Case Study

Dressing mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Dressing mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 4.5. Explain reflection point 5 for Dressing mirror.
Case Study

Dressing mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Dressing mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 5: Road safety

Scenario: Road safety uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Road safety.

Case 5.1. Explain reflection point 1 for Road safety.
Case Study

Road safety can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Road safety can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 5.2. Explain reflection point 2 for Road safety.
Case Study

Road safety can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Road safety can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 5.3. Explain reflection point 3 for Road safety.
Case Study

Road safety can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Road safety can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 5.4. Explain reflection point 4 for Road safety.
Case Study

Road safety can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Road safety can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 5.5. Explain reflection point 5 for Road safety.
Case Study

Road safety can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Road safety can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 6: Laser reflection

Scenario: Laser reflection uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Laser reflection.

Case 6.1. Explain reflection point 1 for Laser reflection.
Case Study

Laser reflection can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Laser reflection can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 6.2. Explain reflection point 2 for Laser reflection.
Case Study

Laser reflection can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Laser reflection can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 6.3. Explain reflection point 3 for Laser reflection.
Case Study

Laser reflection can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Laser reflection can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 6.4. Explain reflection point 4 for Laser reflection.
Case Study

Laser reflection can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Laser reflection can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 6.5. Explain reflection point 5 for Laser reflection.
Case Study

Laser reflection can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Laser reflection can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 7: Solar concentrators

Scenario: Solar concentrators uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Solar concentrators.

Case 7.1. Explain reflection point 1 for Solar concentrators.
Case Study

Solar concentrators can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Solar concentrators can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 7.2. Explain reflection point 2 for Solar concentrators.
Case Study

Solar concentrators can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Solar concentrators can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 7.3. Explain reflection point 3 for Solar concentrators.
Case Study

Solar concentrators can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Solar concentrators can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 7.4. Explain reflection point 4 for Solar concentrators.
Case Study

Solar concentrators can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Solar concentrators can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 7.5. Explain reflection point 5 for Solar concentrators.
Case Study

Solar concentrators can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Solar concentrators can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 8: Security mirrors

Scenario: Security mirrors uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Security mirrors.

Case 8.1. Explain reflection point 1 for Security mirrors.
Case Study

Security mirrors can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Security mirrors can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 8.2. Explain reflection point 2 for Security mirrors.
Case Study

Security mirrors can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Security mirrors can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 8.3. Explain reflection point 3 for Security mirrors.
Case Study

Security mirrors can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Security mirrors can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 8.4. Explain reflection point 4 for Security mirrors.
Case Study

Security mirrors can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Security mirrors can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 8.5. Explain reflection point 5 for Security mirrors.
Case Study

Security mirrors can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Security mirrors can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 9: Optical communication

Scenario: Optical communication uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Optical communication.

Case 9.1. Explain reflection point 1 for Optical communication.
Case Study

Optical communication can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Optical communication can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 9.2. Explain reflection point 2 for Optical communication.
Case Study

Optical communication can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Optical communication can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 9.3. Explain reflection point 3 for Optical communication.
Case Study

Optical communication can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Optical communication can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 9.4. Explain reflection point 4 for Optical communication.
Case Study

Optical communication can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Optical communication can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 9.5. Explain reflection point 5 for Optical communication.
Case Study

Optical communication can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Optical communication can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 10: Plane mirror in salon

Scenario: Plane mirror in salon uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Plane mirror in salon.

Case 10.1. Explain reflection point 1 for Plane mirror in salon.
Case Study

Plane mirror in salon can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Plane mirror in salon can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 10.2. Explain reflection point 2 for Plane mirror in salon.
Case Study

Plane mirror in salon can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Plane mirror in salon can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 10.3. Explain reflection point 3 for Plane mirror in salon.
Case Study

Plane mirror in salon can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Plane mirror in salon can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 10.4. Explain reflection point 4 for Plane mirror in salon.
Case Study

Plane mirror in salon can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Plane mirror in salon can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 10.5. Explain reflection point 5 for Plane mirror in salon.
Case Study

Plane mirror in salon can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Plane mirror in salon can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 11: Multiple mirror setup

Scenario: Multiple mirror setup uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Multiple mirror setup.

Case 11.1. Explain reflection point 1 for Multiple mirror setup.
Case Study

Multiple mirror setup can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Multiple mirror setup can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 11.2. Explain reflection point 2 for Multiple mirror setup.
Case Study

Multiple mirror setup can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Multiple mirror setup can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 11.3. Explain reflection point 3 for Multiple mirror setup.
Case Study

Multiple mirror setup can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Multiple mirror setup can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 11.4. Explain reflection point 4 for Multiple mirror setup.
Case Study

Multiple mirror setup can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Multiple mirror setup can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 11.5. Explain reflection point 5 for Multiple mirror setup.
Case Study

Multiple mirror setup can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Multiple mirror setup can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 12: Reflecting telescope

Scenario: Reflecting telescope uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Reflecting telescope.

Case 12.1. Explain reflection point 1 for Reflecting telescope.
Case Study

Reflecting telescope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Reflecting telescope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 12.2. Explain reflection point 2 for Reflecting telescope.
Case Study

Reflecting telescope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Reflecting telescope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 12.3. Explain reflection point 3 for Reflecting telescope.
Case Study

Reflecting telescope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Reflecting telescope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 12.4. Explain reflection point 4 for Reflecting telescope.
Case Study

Reflecting telescope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Reflecting telescope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 12.5. Explain reflection point 5 for Reflecting telescope.
Case Study

Reflecting telescope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Reflecting telescope can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 13: Sign board visibility

Scenario: Sign board visibility uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Sign board visibility.

Case 13.1. Explain reflection point 1 for Sign board visibility.
Case Study

Sign board visibility can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Sign board visibility can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 13.2. Explain reflection point 2 for Sign board visibility.
Case Study

Sign board visibility can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Sign board visibility can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 13.3. Explain reflection point 3 for Sign board visibility.
Case Study

Sign board visibility can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Sign board visibility can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 13.4. Explain reflection point 4 for Sign board visibility.
Case Study

Sign board visibility can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Sign board visibility can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 13.5. Explain reflection point 5 for Sign board visibility.
Case Study

Sign board visibility can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Sign board visibility can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 14: Reflective jacket

Scenario: Reflective jacket uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Reflective jacket.

Case 14.1. Explain reflection point 1 for Reflective jacket.
Case Study

Reflective jacket can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Reflective jacket can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 14.2. Explain reflection point 2 for Reflective jacket.
Case Study

Reflective jacket can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Reflective jacket can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 14.3. Explain reflection point 3 for Reflective jacket.
Case Study

Reflective jacket can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Reflective jacket can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 14.4. Explain reflection point 4 for Reflective jacket.
Case Study

Reflective jacket can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Reflective jacket can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 14.5. Explain reflection point 5 for Reflective jacket.
Case Study

Reflective jacket can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Reflective jacket can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Case Study 15: Bathroom mirror

Scenario: Bathroom mirror uses reflection of light. The observed behaviour depends on whether reflection is regular or diffuse, how the mirror is placed and how rays obey the law i=r.

Reflection at a plane surface

Representative reflection diagram for Bathroom mirror.

Case 15.1. Explain reflection point 1 for Bathroom mirror.
Case Study

Bathroom mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Bathroom mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 15.2. Explain reflection point 2 for Bathroom mirror.
Case Study

Bathroom mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Bathroom mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 15.3. Explain reflection point 3 for Bathroom mirror.
Case Study

Bathroom mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Bathroom mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 15.4. Explain reflection point 4 for Bathroom mirror.
Case Study

Bathroom mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Bathroom mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.
Case 15.5. Explain reflection point 5 for Bathroom mirror.
Case Study

Bathroom mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Answer: Bathroom mirror can be analysed by drawing incident ray, reflected ray and normal, then applying the law of reflection and image formation principles.

Section 14: Quick Revision Notes

Important formulas
  • i = r
  • mirror rotation: θ → 2θ
  • N = 360/θ − 1
  • plane mirror magnification = +1
Important concepts
  • Angles are measured from normal.
  • Plane mirror image is virtual and erect.
  • Diffuse reflection obeys laws locally.
  • Object-image distance changes at 2v for perpendicular motion.
Exam tips
  • Always draw normal.
  • Mark i and r clearly.
  • Use symmetry for plane mirrors.
  • For two mirrors, check angle and object position.

Most repeated questions: laws of reflection, lateral inversion, mirror rotation, number of images and regular vs diffuse reflection.

Section 15: Kumar Sir Guidance Section

If Reflection of Light, Plane Mirrors, Multiple Images, Mirror Rotation or any Ray Optics concept is not clear, students may contact Kumar Sir for one-to-one personalised Physics guidance.

Phone: +91-9958461445

Email: kumarsirphysics@gmail.com

Website: https://kumarphysicsclasses.com

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