A wire of resistance` (10 Omega)` is stretched to twice its original length. The resistance of half of the streached wire is

A resistance 10 Omega is stretched to twice its original length . The resistance of the stretched wire is

A wire of resistance 4 Omega is stretched to twice its original length. The resistance of stretched wire would be

A wire of resistance 4 Omega is stretched to twice its original length. In the process of stretching, its area of cross-section gets halved. Now, the resistance of the wire is

A wire has a resistance of 10Omega . It is stretched by 1//10 of its original length. Then its resistance will be

A given wire of resistance 1 Omega is stretched to double its length. What will be its new resistance ?

A wire is stretched to n times its length. Then the resistance now will be increase by

A metal wire of resistance 6Omega is stretched so that its length is increased to twice its original length. Calculate its new resistance.

A wire of resistance 4 Omega is bent to form a circle. The resistance point A and B will be

If a wire is stretched to four times its length, then the specific resistance of the wire will

A wire of length l has a resistance R. If half of the length is stretched to make the radius half of its original value, then the final resistance of the wire is