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According to Biot-Savarat's law, magenti...

According to Biot-Savarat's law, magentic field due to a straight current carrying wire at a point at a distance r form it is given by
`B=(mu_0I)/(4pir)(sinphi_1+sinphi_2)`
The direction of magnetic field being perpendicular to the plane containing the wire and the point.

Find magnetic field at point O in Fig.

A

`-(mu_(0)I)/(4pi sqrt(2)a)(hati+hatk)`

B

`-(mu_(0)I)/(4pi sqrt(2)a)(hati+hatk)`

C

`(-mu_(0)I)/(2sqrt(2)pia)(hatj+hatk)`

D

None of these

Text Solution

Verified by Experts

The correct Answer is:
B
At B: Magnetic field will be zero due to CB and AB parts
`vecB_(AO)=(mu_(0))/(4pi)I/a[sin 0^(@)+sin 45^(@)](-hatj)=(-mu_(0)I)/(4pi sqrt(2)a)hatj`
`vecB_(OC)=(mu_(0))/(4pi)I/a[sin 0^(@)+sin 45^(@)](-hatk)=(-mu_(0)I)/(4pi sqrt(2)a)hatk`
Net magnetic field at B
`vecB_(AO)+vecB_(OC)=(-mu_(0)I)/(4pisqrt(2)a)(hatj+hatk)`
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