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25 June, 19:10

The force between two charges is 10 N. If the distance between the two charges is halved, what is the new force between the charges?

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  1. 25 June, 19:35
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    Answer: 16N

    Explanation:

    According to Coulomb's law, the force existing between two charges is directly proportional to the product of their charges and inversely proportional to the distance between the charges. Mathematically,

    F = kq1q2/r²

    Where F is the force between them

    q1 and q2 are the charges

    r is the distance between them.

    If the force between them is 10N, the formula becomes;

    10 = kq1q2/r² ... (1)

    If the distance between them is now halved, the force will become

    F = kq1q2 / (r/2) ²

    F = kq1q2 / (r²/4)

    F = 4kq1q2/r² ... (2)

    Dividing equation 1 by 2 we have;

    4/F = (kq1q2/r²) : (4kq1q2/r²)

    4/F = kq1q2/r²*r²/4k1q1q2

    4/F = 1/4

    Cross multiplying we have;

    F = 4*4

    F = 16N

    Therefore the new force between the charges is 16N
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