Area vector of a coil of 5 xx 10^(-3)m^2makes an angle of 0^@ with a uniform magnetic field. If from this position the coil is rotated in 0.5 sec., so that the angle made by area vector with the field becomes 90^@. Find the average emf induced in the coil. The magnetic field intensity is 0.3 T. Number of turns in the coil is 500.

Area vector of a coil of 5 xx 10^(-3)m^2makes an angle of 0^@ with a u

1.	Area vector of a coil of 5 xx 10^(-3)m^2makes an angle of 0^@ with a uniform magnetic field. If from this position the coil is rotated in 0.5 sec., so that the angle made by area vector with the field becomes 90^@. Find the average emf induced in the coil. The magnetic field intensity is 0.3 T. Number of turns in the coil is 500.
Answer» 1.5 V 2.5 V 1.4 V 1.3 V Solution :Here, N=500 `A=5xx10^(-3) m^2` `Deltat` = 0.5 s `theta_1=0^@` `theta_2=90^@` B=0.3 T `rArr` FLUX in coil `phi_1=AB COS theta_1` and `phi_2=AB cos theta_2` Change in flux `Deltaphi=phi_2-phi_1` `=AB cos theta_2-AB cos theta_1` `=AB[cos theta_2-cos theta_1]` `=AB [cos 90^@ - cos 0^@]` =AB[0-1]=-AB `therefore` Induced EMF in coil, `E=-N(Deltaphi)/(Deltat)` `=-N((-AB))/(Deltat)` `=(NAB)/(Deltat)` `=(500xx5xx10^(-3)xx0.3)/0.5` `therefore` E=1.5 V

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