A wire of a certain material is stretched slowly by ten per cent. Its new resistance and specific resistance become respectively:

Question

A wire of a certain material is stretched slowly by ten per cent. Its new resistance and specific resistance become respectively: (A) 1.2 times, 1.3 times (B) 1.21 times, same (C) both remain the same (D) 1.1 times, 1.1 times

Tardigrade Admin · Accepted Answer

R =(ρ l / A ) Now, 1=1+(1/10)=(111/10) and therefore, A =(10 A /11) So prime=( p ×((111/10))/(10 A )11)=(ρ l / A ) × ((11)2/(10)2)=1.21 R Now resistance becomes 1.21 times of initial and specific resistance is the intrinsic property so remains same.

Q. A wire of a certain material is stretched slowly by ten per cent. Its new resistance and specific resistance become respectively:

1.2 times, 1.3 times

1.21 times, same

both remain the same

1.1 times, 1.1 times

<br/>R=Aρl​<br/> Now, 1=1+101​=10111​ and therefore, A=1110A​ So ′=1110A​p×(10111​)​=Aρl​×(10)2(11)2​=1.21R Now resistance becomes 1.21 times of initial and specific resistance is the intrinsic property so remains same.