Two tiny spheres carrying charges 1.8 μ C and 2.8 μ C are located at 40 cm apart. The potential at the mid-point of the line joining the two charges is

Question

Two tiny spheres carrying charges 1.8 μ C and 2.8 μ C are located at 40 cm apart. The potential at the mid-point of the line joining the two charges is (A) 3.8 × 104 V (B) 2.1 × 105 V (C) 4.3 × 104 V (D) 3.6 × 105 V

Tardigrade Admin · Accepted Answer

Here, q1=1.8 μ C=1.8×10-6 C, q2 = 2.8 μ C = 2.8 × 10-6C <img class="img-fluid question-image" alt="image" src="https://cdn.tardigrade.in/img/question/physics/a041bab2cdde9c35491f7bc118177f41-.png" /> Distance between the two spheres = 40 cm = 0.4 m For the mid-point r1=r2=(0.40/2)=0.2 m Potential at O, V=(1/4πε0) [(q1/r1)+(q2/r2)] =(9×109(1.8+2.8)×10-6/0.2) =2.1×105 V

Q. Two tiny spheres carrying charges $1.8 μ C$ and $2.8 μ C$ are located at $40 c m$ apart. The potential at the mid-point of the line joining the two charges is

$3.8 \times 1 0^{4} V$

$2.1 \times 1 0^{5} V$

$4.3 \times 1 0^{4} V$

$3.6 \times 1 0^{5} V$

Q. Two tiny spheres carrying charges 1.8μC and 2.8μC are located at 40cm apart. The potential at the mid-point of the line joining the two charges is

3.8×104V

2.1×105V

4.3×104V

3.6×105V

Here, q1​=1.8μC=1.8×10−6C, q2​=2.8μC=2.8×10−6C Distance between the two spheres =40cm=0.4m For the mid-point r1​=r2​=20.40​=0.2m Potential at O, V=4πε0​1​[r1​q1​​+r2​q2​​] =0.29×109(1.8+2.8)×10−6​ =2.1×105V

Q. Two tiny spheres carrying charges $1.8 μ C$ and $2.8 μ C$ are located at $40 c m$ apart. The potential at the mid-point of the line joining the two charges is

$3.8 \times 1 0^{4} V$

$2.1 \times 1 0^{5} V$

$4.3 \times 1 0^{4} V$

$3.6 \times 1 0^{5} V$