Capacity of a capacitor is 48 μ F . When it is charged from 0.1 C to 0.5 C , change in the energy stored is

Question

Capacity of a capacitor is 48 μ F . When it is charged from 0.1 C to 0.5 C , change in the energy stored is (A)  2500 J  (B)  2.5 × 10-3 J  (C)  2.5 × 106 J  (D)  2.42 × 10-2 J

Tardigrade Admin · Accepted Answer

Change in energy Δ U=(1/2)[(q12-q22/C)] =(1/2)[((0.5)2-(0.1)2/48 × 10-6)] =(1/2)[(0.25-0.01/48 × 10-6)] =(1/2)[(0.24/48 × 10-6)] =(1/2)[(104/2)] =2500 J

Q. Capacity of a capacitor is $48 μ F$ . When it is charged from $0.1 C$ to $0.5 C$ , change in the energy stored is

$2500 J$

$2.5 \times 1 0^{- 3} J$

$2.5 \times 1 0^{6} J$

$2.42 \times 1 0^{- 2} J$

Q. Capacity of a capacitor is 48μF . When it is charged from 0.1C to 0.5C , change in the energy stored is

2500J

2.5×10−3J

2.5×106J

2.42×10−2J

Change in energy ΔU=21​[Cq12​−q22​​] =21​[48×10−6(0.5)2−(0.1)2​] =21​[48×10−60.25−0.01​] =21​[48×10−60.24​] =21​[2104​] =2500J

Q. Capacity of a capacitor is $48 μ F$ . When it is charged from $0.1 C$ to $0.5 C$ , change in the energy stored is

$2500 J$

$2.5 \times 1 0^{- 3} J$

$2.5 \times 1 0^{6} J$

$2.42 \times 1 0^{- 2} J$