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Question

Two resistors 400 Ω and 800 Ω are connected in series across a 6 V battery. The potential difference measured by a voltmeter of resistance 10 kΩ across 400 Ω resistor is close to:

A
1.95 V
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B
1.8 V
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C
2.05 V
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D
2 V
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Solution

The correct option is A 1.95 V
The voltmeter of resistance 10 kΩ will be connected parallel to the resistance of 400 Ω.

So, their equivalent resistance is
1R=110000+1400

1R=1+2510000=2610000

R=1000026 Ω

Using Ohm's law, current in the circuit
I=VoltageNet Resistance=61000026+800

Potential difference measured by voltmeter
V=IR=⎜ ⎜ ⎜61000026+800⎟ ⎟ ⎟1000026

V=15077=1.95 V

Hence, option (D) is correct.

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