The resistance of a wire at room temperature 30°C is found to be 10 Ω. Now to increase the resistance by 10 %, the temperature of the wire must be [The temperature coefficient of resistance of the material of the wire is 0.002 per °C].

Question

The resistance of a wire at room temperature 30°C is found to be 10 Ω. Now to increase the resistance by 10 %, the temperature of the wire must be [The temperature coefficient of resistance of the material of the wire is 0.002 per °C]. (A) 36°C (B) 83°C (C) 63°C (D) 33°C

Tardigrade Admin · Accepted Answer

We have Rt=R0(1+α t) Initially, R0(1+30 α)=10 Ω Finally, R0(1+α t)=11 Ω (11/10)=(1+α t/1+30 α) ⇒ 10+(10 × 0.002 × t)=11+330 × 0.002 ⇒ 0.02 t=1+0.66=1.66 ⇒ t=(1.66/0.02)=83° C

Q. The resistance of a wire at room temperature $3 0^{\circ} C$ is found to be $10 Ω$ . Now to increase the resistance by $10%$ , the temperature of the wire must be [The temperature coefficient of resistance of the material of the wire is $0.002$ per $^{\circ} C$ ].

$3 6^{\circ} C$

$8 3^{\circ} C$

$6 3^{\circ} C$

$3 3^{\circ} C$

Q. The resistance of a wire at room temperature 30∘C is found to be 10Ω. Now to increase the resistance by 10%, the temperature of the wire must be [The temperature coefficient of resistance of the material of the wire is 0.002 per ∘C].

36∘C

83∘C

63∘C

33∘C

We have Rt​=R0​(1+αt) Initially, R0​(1+30α)=10Ω Finally, R0​(1+αt)=11Ω 1011​=1+30α1+αt​ ⇒10+(10×0.002×t)=11+330×0.002 ⇒0.02t=1+0.66=1.66 ⇒t=0.021.66​=83∘C

Q. The resistance of a wire at room temperature $3 0^{\circ} C$ is found to be $10 Ω$ . Now to increase the resistance by $10%$ , the temperature of the wire must be [The temperature coefficient of resistance of the material of the wire is $0.002$ per $^{\circ} C$ ].

$3 6^{\circ} C$

$8 3^{\circ} C$

$6 3^{\circ} C$

$3 3^{\circ} C$