For the situation shown in the figure, f...

For the situation shown in the figure, flux through the square loop is:

`((mu_(0)ia)/(2pi))ln(a/(2a-b))`

`((mu_(0)ib)/(2pi))ln(a/(2b-a))`

`((mu_(0)ib)/(2pi))ln(a/(b-a))`

`((mu_(0)ia)/(2pi))ln((2a)/(b-a))`

Text Solution

Verified by Experts

The correct Answer is:

`intdphi=int(mu_(0)I)/(2pix)(bdx)`
`phi=(mu_(0)Ib)/(2pi)underset((b+a))overset(a)int(dx)/x`
`phi=(mu_(0)Ib)/(2pi)ln(a/(b-a))`

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