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Two point charges, Q1 and Q2, are separated by a distance R. If the magnitudes of both charges are doubled and their separation is halved, what happens to the electrical force that each charge exerts on the other one

User Soulxy
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1 Answer

24 votes
24 votes

Answer:

F' = 16 F

Hence, the electric force between charges becomes sixteen times its initial value.

Step-by-step explanation:

The electric force between the two charges is given by the Colomb's Law:


F = (KQ_1Q_2)/(R^2) ------------------- eq(1)

where

F = electric force

K = Colomb's Constant

Q₁ = magnitude of the first charge

Q₂ = magnitude of the second charge

R = Distance between charges

Now the magnitudes of the charges are doubled and the distance between them is halved. Therefore:


F' = (K(2Q_!)(2Q_2))/(((R)/(2))^2)\\\\F' = 16 (KQ_1Q_2)/(R^2)

using equation (1):

F' = 16 F

Hence, the electric force between charges becomes sixteen times of its initial value.

User Kiel Labuca
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