Three long, straight and parallel wires carrying currents are arranged as shown in figure. The force experienced by 10 cm length of wire Q is

Question

Three long, straight and parallel wires carrying currents are arranged as shown in figure. The force experienced by 10 cm length of wire Q is (A) 1.4 × 10-4 N towards the right (B) 1.4 × 10-4 N towards the left (C) 2.6 × 10-4 N to the right (D) 2.6 × 10-4 N to the left

Tardigrade Admin · Accepted Answer

Force on wire Q due to wire P is FP=10-7 × (2 × 30 × 10/0.1) × 0.1 =6 × 10-5 N (Towards left) Force on wire Q due to wire R is FR=10-7 × (2 × 20 × 10/0.02) × 0.1 =20 × 10-5 N (Towards right) Hence F net = F R - F P =14 × 10-5 N =1.4 × 10-4 N (Towards right)

Q. Three long, straight and parallel wires carrying currents are arranged as shown in figure. The force experienced by $10 c m$ length of wire $Q$ is

$1.4 \times 1 0^{- 4} N$ towards the right

$1.4 \times 1 0^{- 4} N$ towards the left

$2.6 \times 1 0^{- 4} N$ to the right

$2.6 \times 1 0^{- 4} N$ to the left

Q. Three long, straight and parallel wires carrying currents are arranged as shown in figure. The force experienced by 10cm length of wire Q is

1.4×10−4N towards the right

1.4×10−4N towards the left

2.6×10−4N to the right

2.6×10−4N to the left

Force on wire Q due to wire P is FP​=10−7×0.12×30×10​×0.1 =6×10−5N (Towards left) Force on wire Q due to wire R is FR​=10−7×0.022×20×10​×0.1 =20×10−5N (Towards right) Hence Fnet​=FR​−FP​ =14×10−5N =1.4×10−4N (Towards right)

Q. Three long, straight and parallel wires carrying currents are arranged as shown in figure. The force experienced by $10 c m$ length of wire $Q$ is

$1.4 \times 1 0^{- 4} N$ towards the right

$1.4 \times 1 0^{- 4} N$ towards the left

$2.6 \times 1 0^{- 4} N$ to the right

$2.6 \times 1 0^{- 4} N$ to the left