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Question

Three capacitors, each of capacitance 4 μF are connected to a battery of voltage 10 V. When key K is closed, the charge which will flow through the battery is

A
80 μC
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B
40/3 μC
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C
40 μC
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D
20 μC
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Solution

The correct option is B 40/3 μC

The capacitance of the parallel combination is (4+4) μF=8 μF.

When key is open, the total effective capacitance will be

Ceq=4×84+8 μF=83 μF

So, charge on capacitors,

Q1=CeqV=83×10=803 μC

When the key closed, capacitors in parallel are short-circuited or ineffective because conducting wire have same potential point and capacitor between same potential points is ineffective.

So, the capacitance of the circuit is now 4 μF.

Therefore, charge Q2=40 μC

charge flown through battery is (Q2Q1).

Q2Q1=(40803) μC=403 μC

Hence, option (d) is correct.

Key concept- Magnitude of charge flown is the difference between initial and final charge on the capacitors.

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