Q3. ] The battery charger shown in Figure below is E = 24 V and its capacity is 200 Wh. The average charging current should be ldc = 10 A. The primary input voltage is Vr.m.s = 220 V, 50 Hz, and the transformer has a turn ratio of n = 2:1. Calculate: Hint: [Idc (2πCOSа + 2Eα-ПE)] 2R a) the conduction angle 6 of the diode. b) the current-limiting resistance R. c) the power rating PR of R. d) the charging time ho in hours. .e) the rectifier efficiency n. f) the PIV of the diode n:1 R D hare E

Introductory Circuit Analysis (13th Edition)
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ISBN:9780133923605
Author:Robert L. Boylestad
Publisher:Robert L. Boylestad
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Q3.
] The battery charger shown in Figure below is E = 24 V and its capacity is 200 Wh.
The average charging current should be ldc = 10 A. The primary input voltage is Vr.m.s = 220
V, 50 Hz, and the transformer has a turn ratio of n = 2:1. Calculate:
Hint: [Idc (2πCOSα + 2Еα-лE)]
2R
a) the conduction angle 6 of the diode. b) the current-limiting resistance R.
c) the power rating PR of R. d) the charging time ho in hours.
.e) the rectifier efficiency n. f) the PIV of the diode
n:1
R
D₁
har
E
Transcribed Image Text:Q3. ] The battery charger shown in Figure below is E = 24 V and its capacity is 200 Wh. The average charging current should be ldc = 10 A. The primary input voltage is Vr.m.s = 220 V, 50 Hz, and the transformer has a turn ratio of n = 2:1. Calculate: Hint: [Idc (2πCOSα + 2Еα-лE)] 2R a) the conduction angle 6 of the diode. b) the current-limiting resistance R. c) the power rating PR of R. d) the charging time ho in hours. .e) the rectifier efficiency n. f) the PIV of the diode n:1 R D₁ har E
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