n charged drops, each of radius r and charge q, coalesce to form a big drop of radius R and charge Q. If V is the electric potential and E is the electric field at the surface of a drop, then
A
Ebig=n1/3Esmall
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B
Vbig=n2/3Vsmall
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C
Esmall=n2/3Ebig
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D
Vbig=n1/3Vsmall
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Solution
The correct option is BVbig=n2/3Vsmall From conservation of charge we can say nq=Q----(i)
By conservation of volume n×43πr3=43πR3 ⟹R=n1/3r -----(ii)
Let Ebig be the electric field of bigger drop and Esmall be the electric field of small droplet.
We can write Ebig=kQR2 = knq(n1/3(r))2----(iii) Esmall=kqr2 ----(iv)
On dividing (iii) from (iv) we get EbigEsmall=n1/3
Let Vbig and Vsmall be potential of big and small drop respectively. Vbig=kQR =knqn1/3r----(v) Vsmall=kqr----(vi)