In a L-R circuit, the value of L is (0.4 / π) H sar the value of R is 30 Ω. If in circuit, an alternating emf of 200 V at 50 cycle / s is connected, the impedance of the circuit and current will be

Question

In a L-R circuit, the value of L is (0.4 / π) H sar the value of R is 30 Ω. If in circuit, an alternating emf of 200 V at 50 cycle / s is connected, the impedance of the circuit and current will be (A) 11. Ω , 17.5 A (B) 30. Ω , 6.5 A (C) 40. Ω , 5 A (D) 50 Ω , 4 A

Tardigrade Admin · Accepted Answer

Impedance of L-R circuit is Z=√R2+XL2=√R2+(ω L)2 =√R2+(2 π f L)2 Given, L=(0.4/π) H, R=30 Ω, f=50 cycle/s So, Z=√(30)2+(2 π × 50 × (0.4/π))2 =√(30)2+(40)2=√900+1600=50 Ω and current I=(V/Z)=(200/50)=4 A

Q. In a $L - R$ circuit, the value of $L$ is $(0.4/ π) H$ sar the value of $R$ is $30 Ω$ . If in circuit, an alternating emf of $200 V$ at $50 cyc l e / s$ is connected, the impedance of the circuit and current will be

$11. Ω, 17.5 A$

$30. Ω, 6.5 A$

$40. Ω, 5 A$

$50 Ω, 4 A$

Q. In a L−R circuit, the value of L is (0.4/π)H sar the value of R is 30Ω. If in circuit, an alternating emf of 200V at 50cycle/s is connected, the impedance of the circuit and current will be

11.Ω,17.5A

30.Ω,6.5A

40.Ω,5A

50Ω,4A

Impedance of L−R circuit is Z=R2+XL2​​=R2+(ωL)2​ =R2+(2πfL)2​ Given, L=π0.4​H,R=30Ω,f=50 cycle/s So, Z=(30)2+(2π×50×π0.4​)2​ =(30)2+(40)2​=900+1600​=50Ω and current I=ZV​=50200​=4A

Q. In a $L - R$ circuit, the value of $L$ is $(0.4/ π) H$ sar the value of $R$ is $30 Ω$ . If in circuit, an alternating emf of $200 V$ at $50 cyc l e / s$ is connected, the impedance of the circuit and current will be

$11. Ω, 17.5 A$

$30. Ω, 6.5 A$

$40. Ω, 5 A$

$50 Ω, 4 A$