The voltmeter shown in figure reads 18 V across 50 ohm resistor. The resistance of voltmeter is nearly

Question

The voltmeter shown in figure reads 18 V across 50 ohm resistor. The resistance of voltmeter is nearly (A) 140 Ω (B) 128.5 Ω (C) 103 Ω (D) 162 Ω

Tardigrade Admin · Accepted Answer

Voltmeter reads 18 V ⇒ Potential difference across 24 Ω resistor = 30 - 18 = 12 V ⇒ Current through battery = (12/24)=0.5 A ⇒ Let voltmeter resistance = x Now current through 50 ohm is (18/50) and current through voltmeter = (18/x) (18/50)+(18/x)=0.5 ⇒ x = 128.5 Ω

Q. The voltmeter shown in figure reads 18 V across 50 ohm resistor. The resistance of voltmeter is nearly

140 $Ω$

128.5 $Ω$

103 $Ω$

162 $Ω$

Q. The voltmeter shown in figure reads 18 V across 50 ohm resistor. The resistance of voltmeter is nearly

140 Ω

128.5 Ω

103 Ω

162 Ω

Voltmeter reads 18 V ⇒ Potential difference across 24 Ω resistor = 30 - 18 = 12 V ⇒ Current through battery = 2412​=0.5A ⇒ Let voltmeter resistance = x Now current through 50 ohm is 5018​ and current through voltmeter = x18​ 5018​+x18​=0.5 ⇒x=128.5Ω

140 $Ω$

128.5 $Ω$

103 $Ω$

162 $Ω$