Analog electronics circuits miscellaneous Easy Questions and Answers | Page - 55

Analog electronics circuits miscellaneous

In the circuit shown below | V₀ | = 1 V to a certain set of values of ω, R and C. | V₀ | will remain as 1 V even if:

1. None of these
1. ω is halved
1. R is halved
1. C is doubled

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The given circuit represent all pass filter.
T.F. = H (j) = 1 + (RC)² = 1
1 + (RC)²

when, R and C are changed by the same magnitude the transfer function is unchanged.
Hence alternative (A) is the correct choice.

Correct Option: A

The given circuit represent all pass filter.
T.F. = H (j) = 1 + (RC)² = 1
1 + (RC)²

when, R and C are changed by the same magnitude the transfer function is unchanged.
Hence alternative (A) is the correct choice.

Each transistor in the darlington pair shown below has h_FE = 100. The overall h_FE of the composite transistor neglecting leakage current is:

1. 10000
1. 10001
1. 10100
1. 10200

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The overall h′_FE of the final stage is given by relation = 100² + 2 × 100 = 10000 + 200 = 10200
(h′_FE = h²_FE + 2 h_FE)

Correct Option: D

The overall h′_FE of the final stage is given by relation = 100² + 2 × 100 = 10000 + 200 = 10200
(h′_FE = h²_FE + 2 h_FE)

If the CMRR of the Op-amp is 60 dB, then magnitude of the output voltage is:

1. 1 mV
1. 100 mV
1. 200 mV
1. 2 V

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V_– = R . 2 = 1 V
R + R

V₊ = R . 2 = 1 V
R + R

V_d = V₊ – V_– = 0
given that
CMRR = 60 dB
60 = 20 log₁₀ A_dM
A_CM

= 20 log₁₀ Ad – 20 log₁₀ A_c
60 = 0 – 20 log₁₀ A_c
or 3 = – log₁₀ A_c
or A_c = 10^{– 3} = 0.001
or V_o = A_CM. V₊ + V_–
2

= 0.001 1 + 1
2

= 0.001 = 1 mV

Correct Option: A

V_– = R . 2 = 1 V
R + R

V₊ = R . 2 = 1 V
R + R

V_d = V₊ – V_– = 0
given that
CMRR = 60 dB
60 = 20 log₁₀ A_dM
A_CM

= 20 log₁₀ Ad – 20 log₁₀ A_c
60 = 0 – 20 log₁₀ A_c
or 3 = – log₁₀ A_c
or A_c = 10^{– 3} = 0.001
or V_o = A_CM. V₊ + V_–
2

= 0.001 1 + 1
2

= 0.001 = 1 mV

An op-amp has an open-loop gain of 10⁵ and an openloop upper cut off frequency of 10 Hz. If this op-amp is connected as an amplifier with a closed-loop gain of 100. Then the new upper cut off frequency is:

1. 10 Hz
1. 100 Hz
1. 10 kHz
1. 100 kHz

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Given that
A_OL = 10⁵
f_H = 10 Hz
A_CL = 100
A_CL = A_OL
1 + A_OL · β

1 + A_OL β = 10⁵ = 10³
100

Since due to close loop, gain reduces while uppercut off frequency increases by a factor of (1 + A_OL β)
f_{H_{^* = f_H (1 + A_OL β)
= 10 (10³)
= 10 kHz
Hence alternative (C) is the correct choice.}}

Correct Option: C

Given that
A_OL = 10⁵
f_H = 10 Hz
A_CL = 100
A_CL = A_OL
1 + A_OL · β

1 + A_OL β = 10⁵ = 10³
100

Since due to close loop, gain reduces while uppercut off frequency increases by a factor of (1 + A_OL β)
f_{H_{^* = f_H (1 + A_OL β)
= 10 (10³)
= 10 kHz
Hence alternative (C) is the correct choice.}}

Calculate ν₀

1. – 12 V
1. 12 V
1. – 18 V
1. 18 V

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NA

Correct Option: A

NA