Analog Electronics
Diode Circuits and Applications
Marks 1Marks 2Marks 5
Frequency Response
Marks 2
Bjt and Mosfet Biasing
Marks 1Marks 2Marks 5
Feedback Amplifiers and Oscillator Circuits
Marks 1Marks 2Marks 5
Operational Amplifier
Marks 1Marks 2Marks 5
Small Signal Modeling
Marks 1Marks 2Marks 5
1
GATE EE 2002
MCQ (Single Correct Answer)
+2
-0.6
The output voltage$$\left( {{V_0}} \right)$$ of the Schmitt trigger shown in figure swings between $$+15V$$ and $$–15V.$$ Assume that the operational amplifier is ideal. The output will change from $$+15V$$ to $$–15V$$ when the instantaneous value of the input sine wave is GATE EE 2002 Analog Electronics - Operational Amplifier Question 40 English
A
$$5$$ $$V$$ in the positive slope only
B
$$5$$ $$V$$ in the negative slope only
C
$$5$$ $$V$$ in the positive and negative slopes
D
$$3$$ $$V$$ in the positive and negative slopes
2
GATE EE 2001
MCQ (Single Correct Answer)
+2
-0.6
For the oscillator circuit shown in figure, the expression for the time period of oscillations can be given by (where $$\tau = RC$$ ) GATE EE 2001 Analog Electronics - Operational Amplifier Question 42 English
A
$$\tau \,\ln \,3$$
B
$$2\tau \,\ln \,3$$
C
$$\tau \,\ln \,2$$
D
$$2\tau \,\ln \,2$$
3
GATE EE 2001
MCQ (Single Correct Answer)
+2
-0.6
An op-amp, having a slew rate of $$62.8$$ $$V/\mu \,$$sec, is connected in a voltage follower configuration. If the maximum amplitude of the input sinusoidal is $$10$$ Volts. Then the minimum frequency at which the slew rate limited distortion would set in at the output is
A
$$1$$ $$MHz$$
B
$$6.28$$ $$MHz$$
C
$$10$$ $$MHz$$
D
$$62.8$$ $$MHz$$
4
GATE EE 2000
Subjective
+2
-0
An active filter consisting of an op-amp, resistor $${R_1},\,\,{R_2},\,\,{R_3}$$ and two capacitors of value $$C$$ each, has a transfer function
$$T\left( s \right) = {{{{ - s} \over {\left( {{R_1}C} \right)}}} \over {{s^2} + {{2s} \over {\left( {{R_3}C} \right)}} + {1 \over {\left( {R{R_3}{C^2}} \right)}}}}$$
where, $$R = {R_1}||{R_2}$$
If $${R_1} = 2k\Omega ,{R_2} = 2/3\,k\Omega ,\,\,{R_3} = 200\,k\Omega $$ and $$C = 0.1\,\,\mu F,$$ determine the center frequency $${\omega _0},$$ gain $${A_0}$$ and the $$Q$$ of the filter.
GATE EE Subjects
Electromagnetic Fields
Signals and Systems
Engineering Mathematics
General Aptitude
Power Electronics
Power System Analysis
Analog Electronics
Control Systems
Digital Electronics
Electrical Machines
Electric Circuits
Electrical and Electronics Measurement