Figure shows a network of eight resistors, each equal to 2 Ω, connected to a 3 V battery of negligible internal resistance. The current I in the circuit is

Question

Figure shows a network of eight resistors, each equal to 2 Ω, connected to a 3 V battery of negligible internal resistance. The current I in the circuit is (A) 0.25 A (B) 0.50 A (C) 0.75 A (D) 1.0 A

Tardigrade Admin · Accepted Answer

Because of symmetry, B E and C F are ineffective. ∴ A B, B C, C D are in series. So, their equivalent resistance is R1=6 Ω A E, E F, F D are in series. So, their equivalent resistance is R2=6 Ω R1 and R2 are in parallel. So the equivalent resistance of the circuit is (1/R)=(1/R1)+(1/R2)=(1/6 Ω)+(1/6 Ω) or R=3 Ω ∴ Current, I=(3 V /3 Ω)=1.0 A

Q. Figure shows a network of eight resistors, each equal to 2Ω, connected to a 3V battery of negligible internal resistance. The current I in the circuit is

0.25 A

0.50 A

0.75 A

1.0 A

Q. Figure shows a network of eight resistors, each equal to $2 Ω,$ connected to a $3 V$ battery of negligible internal resistance. The current $I$ in the circuit is