In a centre tapped full wave rectifier, RL=1KΩ and for diode Rf=10Ω. The primary voltage is 800sinωt with transformer turns ratio=2. The ripple factor will be _________(a) 54%(b) 48%(c) 26%(d) 81%This question was posed to me during an online interview.My question is taken from Full-wave Rectifier topic in division Application of Diodes of Electronic Devices & Circuits

In a centre tapped full wave rectifier, RL=1KΩ and for diode Rf=10�

1.	In a centre tapped full wave rectifier, RL=1KΩ and for diode Rf=10Ω. The primary voltage is 800sinωt with transformer turns ratio=2. The ripple factor will be _________(a) 54%(b) 48%(c) 26%(d) 81%This question was posed to me during an online interview.My question is taken from Full-wave Rectifier topic in division Application of Diodes of Electronic Devices & Circuits
Answer» CORRECT ANSWER is (b) 48% To elaborate: The ripple factor ϒ= [(IRMS/IAVG)^2 – 1]^1/2. IRMS =Im /√2=Vm/(Rf+RL)√2=200/1.01=198. (SECONDARY line to line VOLTAGE is 800/2=400. Due to centre tap Vm=400/2=200) IRMS=198/√2=140mA, IAVG=2*198/π=126mA. ϒ=[(140/126)^2-1]^1/2=0.48. So, ϒ=48%.

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