The self inductance of a coil having 400 turns is 10 mH. The magnetic flux through the cross section of the coil corresponding to current 2 mA isA. `4xx10^(-5)Wb`B. `2xx10^(-3)Wb`C. `3xx10^(-5)Wb`D. `8xx10^(-3)Wb`

The self inductance of a coil having 400 turns is 10 mH. The magnetic

1.	The self inductance of a coil having 400 turns is 10 mH. The magnetic flux through the cross section of the coil corresponding to current 2 mA isA. `4xx10^(-5)Wb`B. `2xx10^(-3)Wb`C. `3xx10^(-5)Wb`D. `8xx10^(-3)Wb`
Answer» Correct Answer - A Here, `N=400,L=10 mH=10xx10^(-3)H` `I=2mA=2xx10^(-3)A` Total magnetic flux linked with the coil, `phi=NLI=400xx(10xx10^(-3))xx2xx10^(-3)=8xx10^(-3)Wb` Megnetic flux through the cross-section of the coil = Magnetic flux linked with each turn `(phi)/(N)=(8xx10^(-3))/(200)=4xx10^(-5)Wb`

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The self inductance of a coil having 400 turns is 10 mH. The magnetic flux through the cross section of the coil corresponding to current 2 mA isA. `4xx10^(-5)Wb`B. `2xx10^(-3)Wb`C. `3xx10^(-5)Wb`D. `8xx10^(-3)Wb`

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