154577 A coil of copper having 1000 turns is placed in a magnetic field $\left(B=4 \times 10^{-5}\right)$ perpendicular to its axis. The cross sectional area of the coil is $0.05 \mathrm{~m}^{2}$. If it turns through $180^{\circ}$ in 0.01 second, then the e.m.f induced in the coil will be.
154577 A coil of copper having 1000 turns is placed in a magnetic field $\left(B=4 \times 10^{-5}\right)$ perpendicular to its axis. The cross sectional area of the coil is $0.05 \mathrm{~m}^{2}$. If it turns through $180^{\circ}$ in 0.01 second, then the e.m.f induced in the coil will be.
154577 A coil of copper having 1000 turns is placed in a magnetic field $\left(B=4 \times 10^{-5}\right)$ perpendicular to its axis. The cross sectional area of the coil is $0.05 \mathrm{~m}^{2}$. If it turns through $180^{\circ}$ in 0.01 second, then the e.m.f induced in the coil will be.
154577 A coil of copper having 1000 turns is placed in a magnetic field $\left(B=4 \times 10^{-5}\right)$ perpendicular to its axis. The cross sectional area of the coil is $0.05 \mathrm{~m}^{2}$. If it turns through $180^{\circ}$ in 0.01 second, then the e.m.f induced in the coil will be.
154577 A coil of copper having 1000 turns is placed in a magnetic field $\left(B=4 \times 10^{-5}\right)$ perpendicular to its axis. The cross sectional area of the coil is $0.05 \mathrm{~m}^{2}$. If it turns through $180^{\circ}$ in 0.01 second, then the e.m.f induced in the coil will be.