Analog circuits miscellaneous Easy Questions and Answers | Page - 6

Analog circuits miscellaneous

The period of the output waveform for the circuit of figure shown, when triggered by a negative pulse is

1. 0.75 ms
1. 0.825 ms
1. 0.525 ms
1. 1.5 ms

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T = (1.1) R_AC
= 1.1(7.5 × 10³) (0.1 × 10^{– 6}) = 0.825 ms.

Correct Option: B

T = (1.1) R_AC
= 1.1(7.5 × 10³) (0.1 × 10^{– 6}) = 0.825 ms.

What is the hysterisis voltage of the submitt trigger shown if V_sat = ± 10V ?

1. 1.90 volts
1. 1.45 volts
1. 1.00 volt
1. 0.90 volt

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Hysterisis voltage,
V_H = 2 R₂ V₀ = 2 × 5 × 10 = 1 volt
R₁ + R₂ 100

Correct Option: C

Hysterisis voltage,
V_H = 2 R₂ V₀ = 2 × 5 × 10 = 1 volt
R₁ + R₂ 100

In the circuit of shown in the figure, LED will be ON if v_i is

1. > 10 V
1. < 10 V
1. > 5 V
1. < 5 V

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υ_{_} = (10)(10k) = 5 V
10k + 10k

When υ₊ > 5 V, output will be positive and LED will be ON Hence (c) is correct answer.

Correct Option: C

υ_{_} = (10)(10k) = 5 V
10k + 10k

When υ₊ > 5 V, output will be positive and LED will be ON Hence (c) is correct answer.

For the circuit of the given figure with an ideal operational amplifier, maximum phase shift of the output V_out with reference to the input V_in is

1. 0°
1. – 90°
1. + 90°
1. + 180°

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From the circuit,
V₊ = V_in
1 + jωRC

and V_– =V₊ (Ideal OPAMP) Now
Now V_in - V_– = V_– – V₀
R₁ R₁

⇒ V₀ = 2V_– – V_in = 2V₊ – V_in
= 2 - 1 V_in = 1 - jωRC V₀
1 + jωRC 1 + jωRC

∴ ∠ (V₀ / V_i) = - 2 tan^-1 ωRC
For – 90 ≤ θ ≤ 90°
Phase-shift ∠ (V₀ / V_i) = ± 180°

Correct Option: D

From the circuit,
V₊ = V_in
1 + jωRC

and V_– =V₊ (Ideal OPAMP) Now
Now V_in - V_– = V_– – V₀
R₁ R₁

⇒ V₀ = 2V_– – V_in = 2V₊ – V_in
= 2 - 1 V_in = 1 - jωRC V₀
1 + jωRC 1 + jωRC

∴ ∠ (V₀ / V_i) = - 2 tan^-1 ωRC
For – 90 ≤ θ ≤ 90°
Phase-shift ∠ (V₀ / V_i) = ± 180°

Assuming operational amplifier to be ideal, gain V_out / V_in for the circuit shown in the given figure is

1. – 1
1. – 20
1. – 100
1. – 120

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Using KCL at the node 1 we have
V - 0 + V + V - V_out = 0
10 1 10

⇒ 12V = V_out ...(i)
Also, using KCL at inverting node, we get
V_in - 0 = 0 – V
1 10

⇒ V = – V_in. 10 ...(ii)
From equations (i) and (ii), we get
V_out = -120
V_in

Correct Option: D

Using KCL at the node 1 we have
V - 0 + V + V - V_out = 0
10 1 10

⇒ 12V = V_out ...(i)
Also, using KCL at inverting node, we get
V_in - 0 = 0 – V
1 10

⇒ V = – V_in. 10 ...(ii)
From equations (i) and (ii), we get
V_out = -120
V_in

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