ABCD is a square of side 0.2 metre charges 2nC,4nC 6ncand 1nc are palced at the corners A B C and D respectively calculate the magnitude of force on 1nC
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1
=
2
×0.2=0.28m
∴AO=BO=CO=
2
0.28m
=0.14m
V i.e, Potential at O;V
o
=
4πε
0
1
[
AO
q
1
+
BO
q
2
+
CO
q
3
]
V i.e, Potential at D;V
D
=
4πε
0
1
[
AD
q
1
+
BD
q
2
+
CD
q
3
]
Work done =q[V
o
−V
D
]
=
4πε
0
2×10
−9
[
0.14
2×10
−9
+
0.14
4×10
−9
+
0.14
8×10
−9
−
0.2
2×10
−9
−
0.28
4×10
−9
−
0.2
8×10
−9
]
On solving, we get
W=2×10
−9
×2×10
9
[
0.14
14×10
−9
−
0.2
10×10
−9
−
0.28
4×10
−9
]
=4×[10
−7
−0.5×10
−7
−0.14×10
−7
]
=5.40×10
−7
Joules.
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