Question regarding the output for AC circuit with capacitors

AI Thread Summary
The discussion revolves around determining the output voltage (Vo) of an AC circuit with capacitors and ideal diodes. The initial analysis suggests that for the first positive cycle, the output voltage is influenced by the charging behavior of the capacitors, leading to Vo being calculated as -2Vi. However, confusion arises regarding the impact of the diodes on the output during different cycles, particularly in reverse bias conditions. Participants explore various scenarios and calculations, ultimately questioning the assumptions about diode orientation and the resulting voltage drops. The conversation emphasizes the importance of understanding diode behavior in AC circuits to accurately determine the output voltage.
karan000
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Homework Statement


df1746a830.jpg

Both diodes are ideal.

Answers:
(a) Vi
(b) -Vi
(c) -2Vi
(d) none of the above

Homework Equations


Q=CV

The Attempt at a Solution


1. For t=0 to Pi:
Cap1 and Cap2 are in series and hence Q1=Q2, therefore Vc1 = Vc2.

From this we get Vi = Vc1 + Vc2, hence Vc1 =Vc2 = Vi/2.

2. For t=Pi to 2Pi,
95c95fd031.jpg


The circuit should look like 3 batteries in series as such:
fc5e62682b.jpg
,

Therefore Vo = -(Vi + Vi/2 + Vi/2) = -2Vi,
And so the answer is (c).

BUT...
Couldn't the circuit look like this too?

851ddeac22.png


And so Vo = - (1.5Vi - 0.5Vi) = -Vi
Thus the answer is (b) ?

BUT...
We are just taking the voltage drop across the resistor, so Vo= Vc2 = 1/2Vi
So the answer is (d).Which is correct and what exactly am I misunderstanding?
 
Last edited:
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karan000 said:
1. For t=0 to Pi:
Cap1 and Cap2 are in series and hence Q1=Q2, therefore Vc1 = Vc2.

Check that. What about the left hand diode?

(I assume you mean Vi is +ve during t=0 to Pi)
 
It's worth spending a moment just looking at the two diodes. What do the diodes mean for the polarity of the output voltage? Think.. What would need to happen to make it +ve? What would need to happen to make it go -ve.
 
I hope this is a step in the right direction,

1. For the first positive cycle, Vc1 = Vi and Vc2 does not charge is there is a short circuit due to the left ideal diode
2. For the first negative cycle, Vc2 = Vi + Vc1 = 2Vi. As the polarity of the output terminals reversed, the output should be -(2Vi).
3. For any positive cycle afterwards, the Vo remains -(2Vi) due to the short circuit from left diode.
4. For any negative cycle afterwards, Vo remains -(2Vi) as verified from 2.

48d6ce5501.jpg
 
karan000 said:
2. For the first negative cycle, Vc2 = Vi + Vc1 = 2Vi. As the polarity of the output terminals reversed, the output should be -(2Vi).

Think about the right hand diode. How does a -ve cycle affect the output at all?
 
CWatters said:
Think about the right hand diode. How does a -ve cycle affect the output at all?

The diode is reverse biased, so no current flow. Hence Vc2 to remains uncharged also and Vo is 0 for both the positive and negative cycle?
 
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That's what I think. To get Vo = -Vi (or -2Vi) the output diode has to be the other way around like this..

Gzaiv.jpg
 
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CWatters said:
That's what I think. To get Vo = -Vi (or -2Vi) the output diode has to be the other way around like this..

Gzaiv.jpg
Many thanks for your help!
 

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