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Three identical parallel conducting plates A, B and C are placed as shown. Switches S_1 and S_2 are open, and can connect A and C to earth when closed. +Q charges is given to B. |
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Answer» If `S_1`is closed with `S_2` open, a charge of amount Q will PASS through `S_1`. When EITHER `A` or `C` is EARTHED (but not both together), a parallel plate capcitor is formed with`B`, with `+-Q` charges on the inner surfaces. (The other plate, which is not earthed, PLAYS no role.) Hence, charge of amount `+Q` flows to the earth. When both are earthedtogether, `A` and `C` effectively become connected. The plates now FORM two capacitors in paralle, with capacitances in the ration `1:2`, and hence share charge `Q` in the same ratio. `C_(1)=(epsilon_(0)A)/(2d),C_(2)=(epsilon_(0)A)/(d)(C_(1))/(C_(2))=(1)/(2)` Now we can write `(q_(1))/(q_(2))=(C_(1))/(C_(2))=(1)/(2)` because potential difference of both the capacitors is same and `q_(1)+q_(2)=Q`. Solving these, we get `q_(1)=Q//3,q_(2)=2Q//3`. 
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