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Charges A and B are separated by a distance. If the distance is reduced to ½ the original value, what effect will it have on the electrostatic force?

Charges A and B are separated by a distance. If the distance is reduced to ½ the original-example-1
User Jaybit
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1 Answer

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17 votes

ANSWER:

B. Quadrupled.

Explanation:

By means of Coulomb's law we have the following:


F=k\cdot(q_1\cdot q_2)/(r^2)

Now, if the distance is halved (r' = 1/2 r), we substitute:


\begin{gathered} F^(\prime)=k\cdot(q_1\cdot q_2)/(((1)/(2)r)^2) \\ \\ F^(\prime)=k(q_1q_2)/((1)/(4)r^2) \\ \\ F^(\prime)=4\cdot k\cdot(q_1\cdot q_2)/(r^2) \\ \\ F^(\prime)=4F \end{gathered}

Which means that the force is quadrupled.

The correct answer is B. Quadrupled.

User HaemEternal
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