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Question

Two metal spheres one of radius R and 2R respectively. have the same surface charge density σ. They are brought in contact and separated. What will be the new surface charge densities on them?

A
σ1=53σ , σ2=56σ
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B
σ1=56σ , σ2=52σ
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C
σ1=52σ , σ2=53σ
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D
σ1=52σ , σ2=56σ
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Solution

The correct option is A σ1=53σ , σ2=56σ
Let,
Q1=σ4πR2Q2=σ4π(2R)2=4(σ4πR2)

Total charge after connecting = Total charge before connecting
Q1+Q2=Q1+Q2

Q1+Q2=σ4πR2+4(σ4πR2)

Q1+Q2=5(σ4πR2)=5Q1

Q1+Q2=5Q1 ........(1)

After connecting they will have same potential,

V1=V2

14πε0Q1R=14πε0Q22R

Q1=Q22Q2=2Q1

From (1) we get,

Q1+2Q1=5Q1

Q1=53Q1 and

Q2=103Q1

And new surface chaege density becomes,

σ1=Q14πR2=53Q14πR2=53σ

σ2=Q24π(2R)2=103×4[Q14πR2]=56σ

<!--td {border: 1px solid #ccc;}br {mso-data-placement:same-cell;}--> Hence, (a) is the correct answer.

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