Electric field at x=10 cm is 100 V / m and at x=-10 cm is -100 V / m . The magnitude of charge enclosed by the cube of side 20 m is

Question

Electric field at x=10 cm is 100 V / m and at x=-10 cm is -100 V / m . The magnitude of charge enclosed by the cube of side 20 m is (A)  8 ε 0  (B)  2 ε 0  (C)  3 ε 0  (D)  5 ε 0

Tardigrade Admin · Accepted Answer

From Gauss's law, "the net electric flux through any closed surface is equal to the net charge inside the surface divided by

ε_{0} .

." Then

\oint E \cdot d S = \frac{q _{in}}{ε _{0}}

∴ 100 \times (0.2)^{2} - (- 100) (0.2)^{2} + 0 + 0 = \frac{q _{in}}{ε _{0}}

\Rightarrow 4 - (- 4) = \frac{q _{in}}{ε _{0}}

∴ q_{in} = 8 ε_{0}

Q. Electric field at $x = 10 c m$ is $100 V / m$ and at $x = - 10 c m$ is $- 100 V / m .$ The magnitude of charge enclosed by the cube of side $20 m$ is

$8 ε_{0}$

$2 ε_{0}$

$3 ε_{0}$

$5 ε_{0}$

Q. Electric field at x=10cm is 100V/m and at x=−10cm is −100V/m. The magnitude of charge enclosed by the cube of side 20m is

8ε0​

2ε0​

3ε0​

5ε0​

From Gauss's law, "the net electric flux through any closed surface is equal to the net charge inside the surface divided by ε0​.." Then ∮E⋅dS=ε0​qin ​​ ∴100×(0.2)2−(−100)(0.2)2+0+0=ε0​qin​​ ⇒4−(−4)=ε0​qin ​​ ∴qin ​=8ε0​

Q. Electric field at $x = 10 c m$ is $100 V / m$ and at $x = - 10 c m$ is $- 100 V / m .$ The magnitude of charge enclosed by the cube of side $20 m$ is

$8 ε_{0}$

$2 ε_{0}$

$3 ε_{0}$

$5 ε_{0}$