Ask Question
10 May, 21:19

A small object has charge Q. Charge q is removed from it and placed on a second small object The two objects are placed I m apart. For the force that each object exerts on the other to be a maximum, what should q be? a) q 20 c) q Q/2 d) q / 4

+2
Answers (1)
  1. 11 May, 00:39
    0
    q = Q/2

    option c is correct

    Explanation:

    given data

    charge = Q

    distance r = 1 m

    charge = q

    to find out

    what should q be

    solution

    we have given charge q is remove so

    q1 = Q-q

    q2 = q

    we know by coulombs law force

    force = kq1q2 / r² ... 1

    put here value and we know k is constant

    F = k (Q-q) q / 1

    now take derivative charge q and put = 0

    dF/dq = k d (Q-q) q / dq

    so k (Q-q) q = 0

    Q = 2q

    q = Q/2

    so option c is correct
Know the Answer?
Not Sure About the Answer?
Find an answer to your question ✅ “A small object has charge Q. Charge q is removed from it and placed on a second small object The two objects are placed I m apart. For the ...” in 📘 Physics if you're in doubt about the correctness of the answers or there's no answer, then try to use the smart search and find answers to the similar questions.
Search for Other Answers