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16 May, 21:52

Two charged objects attract each other with a force of F. What happens to the force between them if one charge is doubled, the other charge is tripled, and the separation distance between their centers is reduced to ¼ its original value?

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  1. 16 May, 21:59
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    The force is increased by a factor of 96. (F1 = 96F)

    Explanation:

    Let the first charge be Q1

    Let the second charge be Q2

    Let the distance between their centers be r

    The electrostatic force, F, between them is:

    F = (k*Q1*Q2) / r²

    If the first charge is doubled = 2Q1

    If the second charge is tripled = 3Q2

    The separation between their centers is reduced to ¼ = ¼r

    The force between them becomes:

    F1 = (k * 2Q1 * 3Q2) / (¼r) ²

    F1 = (6 * k * Q1 * Q2) / (r²/16)

    F1 = 96 (k * Q1 * Q2) / r²

    F1 = 96F

    The force is increased by a factor of 96.
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