Test: Relation of E,D,V - Electrical Engineering (EE) MCQ

Answer: a
Explanation: The electric flux density is directly proportional to electric field intensity. The proportionality constant is permittivity. D=ε E. It is clear that both are in linear relationship.

Answer: a
Explanation: V = -∫E.dl is the integral form. On differentiating both sides, we get E = -Grad (V). Thus the electric field intensity is the negative gradient of the electric potential.

Answer: c
Explanation: The electric field intensity is the ratio of electric potential to the distance. E = V/d. To get V = E X d = 3 X 2 = 6units.

Answer: b
Explanation: The electric potential for the function V = 2x²y + 5z at the point (4, 3, -6) is given by V = 2(4)2(3) + 5(-6) = 96-30 = 66 units.

Answer: c
Explanation: D = εE, where ε = εo εr. The flux density is given by,
D = 8.854 X 10^-12 X 2.2 X 2(1)(2)(3) = 2.33 X 10^-10 units.

Answer: a
Explanation: E = -Grad (V) = -Grad(20/(x² + y²)) = -(-40x i /(x² + y²)² – 40(y j)/(x² + y²)²) = 40(x i + y j)/(x² + y²)². Thus the statement is true.

Answer: b
Explanation: Given V = 60cos θ/r. For r = 3m and θ = 60, we get V = 60cos 60/3 = 20cos 60 = 10 units.

Answer: d
Explanation: The work done is the product of charge and potential.
W = Q X V = 2 X 24 = 48 units.

Answer: b
Explanation: Since V is given find out E.E = -Grad(V) = – Grad(10sin θ cosφ/r). From E, we can easily compute D. D = εE = 8.854 X 10^-12 X 5/2 = 22.13 units.

Answer: a
Explanation: Find E from V, E = -Grad (V). We get E at A(6,-2.5,3) as 59.97i – 71.98j -20k. Thus D = εE = 8.854 X 10^-12 X
(59.97i – 71.98j -20k) = (0.531i – 0.6373j – 0.177k) nC/m².