The resistance of a wire is 20 Ω. It is stretched so that the length becomes three times, then the new resistance of the wire will be

Question

The resistance of a wire is 20 Ω. It is stretched so that the length becomes three times, then the new resistance of the wire will be (A) 200 Ω (B) 160 Ω (C) 120 Ω (D) 180 Ω

Tardigrade Admin · Accepted Answer

Initial resistance, R1=20 Ω ⇒ (ρ l1/A1)=20 ldots (i) Now, l2=3 l1 ∵ Volume remains same. ∴ V1=V2 ⇒ A1 l1=A2 l2 A1 l1=A2 × 3 l1 ⇒ A2=(A1/3) So, final resistance, R2=(ρ l2/A2)=(ρ × 3 l1/((A1)3)) =(9 ρ l1/A1)=9 × 20 Ω by [Eq. (i) ] =180 Ω

Q. The resistance of a wire is $20 Ω$ . It is stretched so that the length becomes three times, then the new resistance of the wire will be

$200 Ω$

$160 Ω$

$120 Ω$

$180 Ω$

Q. The resistance of a wire is 20Ω. It is stretched so that the length becomes three times, then the new resistance of the wire will be

200Ω

160Ω

120Ω

180Ω

Q. The resistance of a wire is $20 Ω$ . It is stretched so that the length becomes three times, then the new resistance of the wire will be

$200 Ω$

$160 Ω$

$120 Ω$

$180 Ω$