explain about this
for contact of two sphere change exchange between them is = (Q+q) (r/R+r)
Answers
Answer:
Suppose that two spheres, S1 and S2, with radii R1 and R2 resp. have the same uniform charge Q and R1>R2. After they are forced to come in contact, why does S1 gain more charge? Why don't they both continue to have equal charges?
Explanation:
1
Down vote
The naive reasoning which leads to the conclusion that charges Q1 and Q2 of two touching conducting spheres with radii R1 and R2 are related by the relation Q1=Q2R1R2 is wrong. This formula holds only when the distance between the spheres L is large compared to R1 and R2, L≫R1,R2, and the spheres are connected by a long wire.
The complete rigorous solution to this question can be found by using some formulas given in the book "Problems in Electrodynamics" by V.V. Batygin, I.N. Toptygin, for example, see problems 211 and 67. In the notation used in that book, the case of touching spheres corresponds to taking the limit a→0 in the bispherical coordinates (ξ,η,α):
x=asinηcosαcoshξ−cosη,y=asinηsinαcoshξ−cosη,z=asinhηcoshξ−cosη
and solving the corresponding boundary problem. The surfaces of two almost touching spheres will have coordinates ξ1=aR1→0, ξ2=−aR2→0. Without going into all the details the final answer is
Q1Q2=R1R21+2∫0∞e−tcosh[(1+k)t]−e−ktsinh[(1+k)t]e−tdt1+2∫0∞e−tcosh[(1+1/k)t]−e−t/ksinh[(1+1/k)t]e−tdt,where k=R1R2.
But if one is interested only in qualitative answer to the question, then as it was explained in the comment by D.W. above, it is energetically more favorable for the sphere with the largest radius to absorb more charge. It is the most obvious in the case when one of the spheres has much larger radius than the other R1≫R2. Consider an extreme case, where the two spheres both have just a little charge, and one of them is far larger than the other. Say one is molecule-sized and the other is Earth-sized, and they each just have two excess electrons. The two electrons on the small ball are quite close, and would prefer to be farther away from each other. So, when the large ball offers them some new space to lease, one of them gladly takes it, and the two electrons already on the large ball hardly mind at all.
In slightly more precise terms: the charges on the small ball, because they're closer together, repel each other more strongly than the net charge on the large ball repels them, so some of them jump over.As Martin Nicholson's answer describes, doing this properly is complicated. However if you are prepared to accept a rather arm waving and approximate argument we can easily see intuitively why the larger sphere carries more charge.
We can calculate the potential at the surface of a charged sphere like this. A spherically symmetric charged body behaves as a point charge. By this I mean that the electric potential outside the sphere is the same as for a point charge at the centre of the sphere. This is a consequence of Gauss's law.
So suppose we have a sphere of radius R and charge Q, the potential at a distance r>R from the centre of the sphere is just:
V=−14πϵ0Qr
And the voltage at the surface of there sphere is therefore:
Vsurface=−14πϵ0QR(1)
Now consider your two spheres of radii R1 and R2, and charges Q1 and Q2. Suppose the spheres are far enough apart that their fields don't affect each other e.g. we connect them with a long wire. When the spheres are connected together they will have the same potential because current can flow between them until the potential difference is zero. That means:
V1=V2
and using equation (1) for the surface voltage we find:
−14πϵ0Q1R1=−14πϵ0Q2R2
or more simply:
Q1R1=Q2R2
And we can rearrange this to get Q1 we get:
Q1=Q2R1R2
and since we know R1>R2 it follows that Q1>Q2.
Now this only applies when the spheres are far apart, but it will approximately apply at closer distances, so we expect the larger sphere will carry more charge even when the spheres are close together.
The ratio of Q/V is called the capacitance, or in this case it would be more precise to call it the self capacitance, and the capacitance of a conducting sphere is:
C=QV=4πϵ0R
Another way of answering your question is to point out that the capacitance of a large sphere is greater than the capacitance of a small sphere, so when the voltages are equal the large sphere will contain a greater charge.