Determine the potential difference VA–VB between points A and B of circuit shown in fig. under what condition is it equal to zero?

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Determine the potential difference VA–VB between points A and B of circuit shown in fig. under what condition is it equal to zero?

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Answer 1 · 2018-08-14T15:49:59

$V_A -V_B= [C_2/(C_1 +C_2) -C_4/(C_3 +C_4)] V$

For, $V_A-V_B=0$ the required condition is $C_2/(C_1 +C_2) =C_4/(C_3 +C_4)$ or $V=0$

Explanation:

Let's calculate the total capacitance of the circuit.

$C_1$ and $C_2$ are in series,so their combined capacitance is $(C_1 C_2)/(C_1+C_2)$

Similarly, $C_3$ and $C_4$ are in series,so their combined capacitance is $(C_3 C_4)/(C_3 +C_4)$

Again,their combination are in parallel,(because potential drop across them is the same)so net capacitance of the circuit is $(C_1 C_2)/(C_1+C_2) +(C_3 C_4)/(C_3 +C_4)=C$ (let)

So,total charge flowing in the circuit is $Q=CV$

Now,let,charge flowing through capacitor $C_1$ and $C_2$ is $Q_1$ and that flowing through $C_3$ and $C_4$ is $Q_2$

So, $Q_1 = (C_1 C_2)/(C_1+C_2) V$ (as, $q=cv$ )

and, $Q_2 = (C_3 C_4)/(C_3 +C_4) V$ (as, $q=cv$ )

Applying Kirchoff's law in the circuit,

$V_A-(Q_1)/(C_1) +(Q_2)/(C_3)=V_B$

or, $V_A -V_B= (Q_1)/(C_1) -(Q_2)/(C_3)$

putting the value of $Q_1$ and $Q_2$ we get,

$V_A -V_B=(C_1 C_2)/(C_1+C_2) (V/(C_1)) -(C_3 C_4)/(C_3 +C_4) (V/(C_3))$

$=> V_A -V_B= [C_2/(C_1 +C_2) -C_4/(C_3 +C_4)] V$

If, $V_A - V_B =0$

then,

$[C_2/(C_1 +C_2) -C_4/(C_3 +C_4)] V=0$

Now, either, $V=0$

Or, $C_2/(C_1 +C_2) -C_4/(C_3 +C_4)=0$

i.e $C_2/(C_1 +C_2) =C_4/(C_3 +C_4)$

This is the condition for which $V_A -V_B$ will be $0$

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Determine the potential difference VA–VB between points A and B of circuit shown in fig. under what condition is it equal to zero?

1 Answer

Explanation:

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