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Question

Three point charge q,4q,2q are placed at the vertices of equilateral Δ ABC of side l as shown in figure. Obtain the expression for the magnitude of the resultant electric force acting on the charge q.
1127218_394e17cddbf4403e854a338d1ab59d30.png

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Solution

F1=(kq2ql2)=2((kq2l2))=2F

F2=(kq2ql2)=4((kq2l2))=4F

resultant=(F1)2+(F2)2+2F1F2cosθ

=4F2+16F2+16F2cos120

=20F2+16F2×(12)

=12F2=23F=23(Kq2l2)


1345703_1127218_ans_425399b0c7e74ccc8c5f9f2b6aaa86eb.png

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