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Question

Three charges of equal magnitude q is placed at the vertices of an equilateral triangle of side l. The force on a charge Q placed at the centroid of the triangle is

A
3Qq4πε0l2
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B
2Qq4πε0l2
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C
Qq2πε0l2
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D
zero
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Solution

The correct option is C zero
As shown in figure draw ADBC
AD=ABcos30o=l32
Distance AO of the centroid O from A
=23AD=2l332=13
Force on Q at O due to charge q1=q at A
F1=14πε0Qq(l3)2=3Qq4πε0l2,along AO
Similarly, force on O due to charge q2=q at B
F2=3Qq4πε0l2, along BO
and force on Q due to charge q3=q at C
F3=3Qq4πε0l2 along CO
Angle between forces F2 and F3=120o
By parallelogram law, resultant of F2 and F3 3Qq4πε0l2 along OA
force on Q=3Qq4πε0l23Qq4πε0l2=0

1027912_940902_ans_154e73dfea4d47b9a04b728fedaca1d0.PNG

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