In the circuit shown in the figure, the current ' I ' is

Question

In the circuit shown in the figure, the current ' I ' is (A) 6 A (B) 2 A (C) 4 A (D) 7 A

Tardigrade Admin · Accepted Answer

Applying junction law We have I =I1+I2 (24-V/3) =(10-V/2)+(9-V/1) ⇒ (24-V/3)=(28-3 V/2) ⇒ 2(24-V)=3(28-3 V) ⇒ 48-2 V=84-9 V ⇒ 7 V =36 ⇒ V=5.14 V From Ohm's law Δ V=I R Δ V=24-5.14=18.86, R=3 Ω ∴ I=(18.86/3) ≈ 6 A

Q. In the circuit shown in the figure, the current ' I ' is

6 A

2 A

4 A

7 A

Applying junction law We have I=I1​+I2​ 324−V​=210−V​+19−V​ ⇒324−V​=228−3V​ ⇒2(24−V)=3(28−3V) ⇒48−2V=84−9V ⇒7V=36 ⇒V=5.14V From Ohm's law ΔV=IR ΔV=24−5.14=18.86,R=3Ω ∴I=318.86​≈6A

Q. In the circuit shown in the figure, the current ' $I$ ' is