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Question

If electrical force between two charges is 200N and we increase 10% charge on one of the charges and decrease 10% charge on the other, then electrical force between them for the same distance becomes :

A
200N
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B
202N
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C
198N
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D
199N
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Solution

The correct option is C 198N
Let two charges are q1 and q2 and r is the distance between them, then electrical force
F=14πε0q1q2r2=200N ....(i)
If q1 is increased by 10%, then
q1=110100q1
and q2 is decreased by 10%, then
q2=90100q2
Then, electrical force between them,
F=14πε0×q1q2r2
F=14πε0×110100q1×90100q2r2 .....(ii)
From equations (i) and (ii), we get
F=200×99100F=198N

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