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Electronics and Communication Engineering (ECE) Exam > Electronics and Communication Engineering (ECE) Tests > Test: Networks- 2 - Electronics and Communication Engineering (ECE) MCQ

Test: Networks- 2 - Electronics and Communication Engineering (ECE) MCQ

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20 Questions MCQ Test - Test: Networks- 2

Test: Networks- 2 for Electronics and Communication Engineering (ECE) 2024 is part of Electronics and Communication Engineering (ECE) preparation. The Test: Networks- 2 questions and answers have been prepared according to the Electronics and Communication Engineering (ECE) exam syllabus.The Test: Networks- 2 MCQs are made for Electronics and Communication Engineering (ECE) 2024 Exam. Find important definitions, questions, notes, meanings, examples, exercises, MCQs and online tests for Test: Networks- 2 below.

Solutions of Test: Networks- 2 questions in English are available as part of our course for Electronics and Communication Engineering (ECE) & Test: Networks- 2 solutions in Hindi for Electronics and Communication Engineering (ECE) course. Download more important topics, notes, lectures and mock test series for Electronics and Communication Engineering (ECE) Exam by signing up for free. Attempt Test: Networks- 2 | 20 questions in 60 minutes | Mock test for Electronics and Communication Engineering (ECE) preparation | Free important questions MCQ to study for Electronics and Communication Engineering (ECE) Exam | Download free PDF with solutions

Test: Networks- 2 - Question 1

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The Y parameter for total network is

Detailed Solution for Test: Networks- 2 - Question 1

There are two networks connected in parallel. Thus there Y-parameter will be added.

*Answer can only contain numeric values

Test: Networks- 2 - Question 2

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in the circuit shown below is

Detailed Solution for Test: Networks- 2 - Question 2

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Test: Networks- 2 - Question 3

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The value of z_infor the circuit shown below is

A.
12Ω
B.
14Ω
C.
9.6Ω
D.
None of these

Detailed Solution for Test: Networks- 2 - Question 3

Net impedance on primary side of transformer is

*Answer can only contain numeric values

Test: Networks- 2 - Question 4

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Equivalent resistance across AB is _____Ω

Detailed Solution for Test: Networks- 2 - Question 4

Convert Δ to Y and then use series parallel combination

Test: Networks- 2 - Question 5

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In the circuit given below v,n = u(—t) + u(t) V

Then vc (t) for t > 0

Detailed Solution for Test: Networks- 2 - Question 5

Test: Networks- 2 - Question 6

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A voltage V = 12√2 cos 5000t V is applied to the circuit shown below.

The current i(t) is

A.
0.49 cos (5000t + 39°)
B.
0.49,√2 cos (50001 + 39°)
C.
10.49 cos(5000t + 51°)
D.
0.49√2.cos(5000t + 51°)

Detailed Solution for Test: Networks- 2 - Question 6

Test: Networks- 2 - Question 7

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In the circuit shown below, the voltage source has been connected for a long time enough for steady state condition to be reached. At time t = 0, switch S is opened. Then open circuit voltage across AB is

A.
V.e ^{- (R / L)}
B.
V + V.e^-R/L
C.
V
D.
o

Test: Networks- 2 - Question 8

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Calculate V_x & I_x in the circuit shown below.

A.
V_x= -4V ; I_x = -2A
B.
V_x = 12V ; I_x = -2A
C.
V_x = —4V ; I_x = 2A
D.
V_x = 12V ; I_x = 2A

Detailed Solution for Test: Networks- 2 - Question 8

Ix = -2A
Apply KCL
-4I_x + 2I_x + V_x = 0
V_x = 4I_x -2I_x = 2I_x = -4V

Test: Networks- 2 - Question 9

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Determine the value of I' in the circuit shown below.

Test: Networks- 2 - Question 10

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Determine RMS values of voltage across capacitor (0.25F), current throughcapacitor, if voltage across capacitor is 4 + 4 cos (9t) - 5cos (4t)

A.
6V, 7.2A
B.
4.5V, 7.2A
C.
5.33V, 7.2A
D.
4.5V, 7.8A

Detailed Solution for Test: Networks- 2 - Question 10

Vc = 4 + 4 cos(9t) - 5cos(4t)

= 1/4 {-4(9) sin(9t) + 5(4) sin (4t)}
⇒ -9 sin(9t) + 5 sin (4t)

RMS value of V_L is =

*Answer can only contain numeric values

Test: Networks- 2 - Question 11

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The value of V, in the circuit shown below

Detailed Solution for Test: Networks- 2 - Question 11

V₁— V₂ =12V................. (1)

At node 0:

--------(2)

At supernode 1 - 2
(3)

Solving 1, 2 & 3; V_o = 4.5V; V₁ = 5V; V₂ = —7V

Test: Networks- 2 - Question 12

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For the circuit shown in figure, find V(t) when V_s = 2sin(500t) V

A.
1.25 cos (500t 141⁰)V
B.
1.25 cos (500t - 39⁰)V
C.
0.8cos(500t-141⁰)V
D.
0.8cos(625t - 39⁰)V

*Answer can only contain numeric values

Test: Networks- 2 - Question 13

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In the circuit shown below, the switch is closed at time t=0. The steady state value of the voltage V_c is_____ V

Detailed Solution for Test: Networks- 2 - Question 13

At steady state inductor short circuit, capacitor is open circuit. Thus voltage V_c is equal to voltage across 1 ohm resistance.

Test: Networks- 2 - Question 14

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Which of the following statements are true for the circuit shown below?

1. It is first order with steady state value of
2. It is second order with steady state value of V = iV, I = 1A
3. The network function has one pole I(s)
4. The network function has two poles I(s)

Choose the correct one

A.
2 and 3
B.
2 and 4
C.
2 alone
D.
1 alone

Detailed Solution for Test: Networks- 2 - Question 14

Under steady state,

Where V(t) is the voltage across the capacitor

This has a pole at S = -2.

Test: Networks- 2 - Question 15

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In the circuit shown below, it is found that the input ac voltage and current are in phase. The value of coupling coefficient K and the dot polarity of the coil PQ are

A.
K = 1/4 and dot at P
B.
K = 1/2 and dot at P
C.
K = 1/4 and dot at Q
D.
K = 1/2 and dot at Q

Detailed Solution for Test: Networks- 2 - Question 15

If input ac voltage and current are in phase then net impedance is equal to zero. Net inductive impedance = Net capacitive impedance

, Thus k = 21 and dot must be at Q so that net inductance =

Test: Networks- 2 - Question 16

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For the given circuit, switch closes at t = 0

A.
B.
zero
C.
D.
∞

Detailed Solution for Test: Networks- 2 - Question 16

Test: Networks- 2 - Question 17

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The voltage applied to a particular circuit comprising two components connected in series is given by:

V = (30 + 40 sin 103t +25sin2x103t +15sin4x103t) Vand the resulting current is given by

= 0.743 sin (103t + 1.190) + 0.781sin(2x103t + 0.896) + 0.636sin(4x103t + 0.559)A

Q. Average power supplied is

A.
OW
B.
15.67W
C.
30W
D.
60W

Detailed Solution for Test: Networks- 2 - Question 17

Average Power P is given by

P = 0 + 5.523+ 6.099+ 4.044 =15.67W

Test: Networks- 2 - Question 18

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The voltage applied to a particular circuit comprising two components connected in series is given by:

V = (30 + 40 sin103t +25sin2x103t +15sin4x103t) Vand the resulting current is given by

= 0.743 sin (103t + 1.190) + 0.781sin(2x103t + 0.896) + 0.636sin(4x103t + 0.559)A

Q. Which of the following element is not a part of the circuit?

A.
R
B.
L
C.
C
D.
Both L and C

Detailed Solution for Test: Networks- 2 - Question 18

The expression for the voltage contains a dc component of 30V. However there is no corresponding term in the expression for current. This indicates that one of the components is a capacitor (since in a dc circuit a capacitor offers infinite impedance to a direct current). Since power is delivered to the circuit the other component is a resistor.

Test: Networks- 2 - Question 19

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Consider the circuit shown in figure

A.
(s+ 1)¹
B.
C.
s(s +1)¹
D.
(s + 1).s

Detailed Solution for Test: Networks- 2 - Question 19

Using current division rule

Test: Networks- 2 - Question 20

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Consider the circuit shown in figure

Q. If input current is δ(t), then i_o (t) (in Amps) will be

A.
δ(t) e^-tu(t)A
B.
e^-tu(t)A
C.
[δ(t) - e^-tu(t) ]A
D.
-e^-tu(t)A

Detailed Solution for Test: Networks- 2 - Question 20

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Networks- 2 MCQs with Answers

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