NEET Physics Tutor Doubt 16

V_L leads current by 90° and V_C lags current by 90°. Therefore the correct vector representation is option 4.

V_A - V_B = L(dI/dt) + IR.

0.5 = 8L + 0.5 × 0.2, so L = 0.05 H.

The induced currents oppose the motion of the falling coil. Hence the downward acceleration becomes less than g, so a < g.

ε = vBl. At t = 0, resistance due to the capacitor is zero. At t = ∞, resistance due to the capacitor is infinite. Thus the current decreases with time.

E = ∫_L/2^L vBdr = ωB∫_L/2^L r dr = 3BωL²/8.

The combinations 1/RC and R/L both have the dimensions of frequency.

I₁ = 2, I₂ = 3. Net peak current I = √(2² + 3² + 2×2×3 cos 60°) = √19.

Therefore I_rms = √(19/2).

From the waveforms, I₁ = I₂ < I₀, and for the square wave I₃ = I₀.

Soft iron is the best material for the core of a transformer.

Let supplied power be x kW. Then (8/x)×100 = 80, so x = 10 kW.

V_L-C = 50 - 50 = 0.

V = 100 sin100πt = 100 cos(100πt - π/2) and I = 20 cos(100πt - π/2).

Phase difference φ = 0. Hence P = V₀I₀cosφ/2 = (100×20)/2 = 1 kW.

I = dq/dt = q₀2πf sin2πft. For maximum value, sin2πft = 1, so peak current is 2πfq₀.

(1/2)ε₀E² is energy density.

Dimensions = [Energy]/[Volume] = [ML²T^-2]/[L³] = [ML^-1T^-2].

Resolving power is inversely proportional to wavelength: R.P. ∝ 1/λ. The effective wavelength of electrons is small.

The false statement among the given prism relations is δ = 2i - A as a general relation.

Resolving power is proportional to aperture. A large aperture gives high resolution.

For a plane mirror, the image approaches the object with twice the object's speed. Relative speed = 2×30 = 60 m/s.

Using the law of reflection with the given geometry, the reflected ray becomes horizontal. Hence the angle made with the horizontal is zero.

The rising or setting sun appears red due to scattering of light in the atmosphere.

Let the effective distance from the surface be x.

8 + x = 10 + 9 - x, so x = 11/2.

n = real/apparent = 9/(11/2) = 18/11 = 1.63.

With respect to the lens, the relative refractive indices are n₁ = n₂ = 1.

Resolving power ∝ 1/λ. Yellow light has larger wavelength than blue light, so resolving power decreases.

u = -40 cm, v = -100 cm.

1/v - 1/u = 1/f, so 1/f = -1/100 + 1/40 and f = 66.67 cm.

For the lens, f = 10 cm and u = -25 cm.

1/v - 1/u = 1/f gives 1/v + 1/25 = 1/10, hence v = 50/3 cm.

Using the mirror condition from the figure, d = 50/3 + 20 = 36.67 cm.

n = c/v = (3×10⁸)/(1.5×10⁸) = 2.

sin C = 1/n = 1/2, so C = 30°.

Let Earth's magnetic field be B₀. Since B₀sinθ = B, B₀ = B/sinθ.

Induced emf E = vB₀cosθ l = (vB cosθ l)/sinθ = Blv cotθ.

By Lenz's law, the induced current opposes the decrease in magnetic flux. The direction is anticlockwise in A and clockwise in B.

ε = (1/2)Bωr². Since v = rω, ε = Bvr/2.

Given δ = A. At minimum deviation, δ = 2i - A, so 2A = 2i and i = A.

n = sin i / sin(A/2) = sin A / sin(A/2) = 2cos(A/2) = √2.

Thus cos(A/2)=1/√2, so A/2=45° and A=90°.

The focal length of every quarter lens is 2f.

1/F = 1/(2f)+1/(2f)+1/(2f)+1/(2f)=4/(2f)=2/f, hence F=f/2.

In a series LCR circuit, power factor is unity at resonance, when capacitive reactance equals inductive reactance.

As in resonance, V_L = V_C. Thus V_L + V_C = 0.

Therefore V₁ + V₂ + V₃ = 200, giving V₂ = 200 V.

The voltage lags the current. Hence the block has capacitive nature, so it is only a capacitor.

The effective value is I = √(a² + b²/2).

Here a=2 and b=3, so I = √(4 + 9/2) = √(17/2) A.

Total energy = Q₀²/(2C). Given capacitor energy is three times inductor energy, inductor energy is one-fourth of total energy.

(1/2)LI² = (1/4)×Q₀²/(2C), so I = Q₀/(2√LC).

At the poles, the perpendicular component of Earth's magnetic field is maximum, so induced e.m.f. is maximum.

P = Fv = 10 × 2 = 20 W. Kinetic energy is converted into heat/electrical energy in the loop.

For the silvered plano-convex lens, 1/F = 2(μ-1)/R.

1/30 = 2(1.5-1)/R, hence R = 30 cm.

For no deviation, (n₁-1)A₁ = (n₂-1)A₂.

A₂ = (0.54×5°)/0.70 = 3.85°.

Let distance of object from lens be x. Then u=-x and for an erect magnified image, v=-4x.

1/v - 1/u = 1/20 gives -1/(4x)+1/x=1/20, so x=15 cm. The lens is convex.

Due to dispersion, refractive index is lower for red light than for violet light. Therefore the focal length for red colour is greater than that for violet.

In a compound microscope, the objective forms an intermediate image that is real, inverted and magnified.

Deviation produced by μ₁ is more than that produced by μ₂. Therefore μ₁ > μ₂.

Let distance of the object from the mirror be x. Then u=-x, v=-2x, and for a concave mirror f=-f.

Using mirror formula 1/v + 1/u = 1/f: -1/(2x)-1/x=-1/f, so x=3f/2.

Distance between object and image is 2x - x = x = 3f/2.