1
GATE EE 2006
MCQ (Single Correct Answer)
+1
-0.3
A single $$-$$ phase half wave uncontrolled converter circuit is shown in figure. A $$2$$ -winding transformer is used at the input for isolation. Assuming the load current to be constant and $${V_{in}} = {V_m}$$ $$\,\sin \omega t,$$ the current waveform through diode $${D_2}$$ will be GATE EE 2006 Power Electronics - Single and Three Phase Rectifier Question 14 English
A
GATE EE 2006 Power Electronics - Single and Three Phase Rectifier Question 14 English Option 1
B
GATE EE 2006 Power Electronics - Single and Three Phase Rectifier Question 14 English Option 2
C
GATE EE 2006 Power Electronics - Single and Three Phase Rectifier Question 14 English Option 3
D
GATE EE 2006 Power Electronics - Single and Three Phase Rectifier Question 14 English Option 4
2
GATE EE 2005
MCQ (Single Correct Answer)
+1
-0.3
A three - phase diode bridge rectifier is fed from a $$400$$ $$V$$ $$RMS$$. $$50$$ $$Hz$$, three $$-$$ phase $$AC$$ source. If the load is purely resistive, then peak instantaneous output voltage is equal to
A
$$400\,V$$
B
$$400\,\,\sqrt 2 V$$
C
$$400\,\,\sqrt {{2 \over 3}\,} \,V$$
D
$${{400} \over {\sqrt 3 \,V}}$$
3
GATE EE 2004
MCQ (Single Correct Answer)
+1
-0.3
The circuit in figure shows a full-wave rectifier. The input voltage is $$230$$ $$V$$ $$(rms)$$ single-phase ac. The peak reverse voltage across the diodes $${D_1}$$ and $${D_2}$$ is GATE EE 2004 Power Electronics - Single and Three Phase Rectifier Question 50 English
A
$$100\sqrt 2 \,V$$
B
$$100$$ $$V$$
C
$$50\sqrt 2 \,V$$
D
$$50$$ $$V$$
4
GATE EE 2004
MCQ (Single Correct Answer)
+1
-0.3
The circuit in figure shows a $$3$$ $$-$$ phase half $$-$$ wave rectifier. The source is a symmetrical, $$3$$ $$-$$ phase four $$-$$ wire system. The line-to-line voltage of the source is $$100 V.$$ The supply frequency is $$400$$ $$Hz.$$ The ripple frequency at the output is GATE EE 2004 Power Electronics - Single and Three Phase Rectifier Question 49 English
A
$$400$$ $$Hz$$
B
$$800$$ $$Hz$$
C
$$1200$$ $$Hz$$
D
$$2400$$ $$Hz$$
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