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29 November, 08:15

Two charges, Q1 and Q2, are separated by 6·cm. The repulsive force between them is 25·N. In each case below, find the force between them if the original situation is changed as described. (a) The magnitude of charge Q1 is reduced to Q1/5. N (b) The distance between the charges is reduced to 2·cm. N (c) The magnitude of charge Q2 is increased to 5Q2 and the distance is increased to 30·cm. N

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  1. 29 November, 10:49
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    a) 5 N b) 225 N c) 5 N

    Explanation:

    a) Per Coulomb's Law the repulsive force between 2 equal sign charges, is directly proportional to the product of the charges, and inversely proportional to the square of the distance between them, acting along the line that joins the charges, as follows:

    F₁₂ = K Q₁ Q₂ / r₁₂²

    So, if we make Q1 = Q1/5, the net effect will be to reduce the force in the same factor, i. e. F₁₂ = 25 N / 5 = 5 N

    b) If we reduce the distance, from r, to r/3, as the factor is squared, the net effect will be to increase the force in a factor equal to 3² = 9.

    So, we will have F₁₂ = 9. 25 N = 225 N

    c) If we make Q2 = 5Q2, the force would be increased 5 times, but if at the same, we increase the distance 5 times, as the factor is squared, the net factor will be 5/25 = 1/5, so we will have:

    F₁₂ = 25 N. 1/5 = 5 N
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