(a) For sphere with radius a, Potential =V
(since, both the charged spheres are connected by a wire)
‌ Charge ‌‌=Qa
‌ Capacitance ‌‌=Ca
‌ Electric field, ‌‌=Ea=‌

Qa

4πε0a2

For sphere with radius b,
Potential =V
(since both the charged spheres are connected by a wire)
‌ Charge ‌‌=Qb
‌ Capacitance ‌‌=Cb
‌ Electric field ‌‌=Eb
‌=‌

Qb

4πε0b2

‌ Now, ‌‌‌

Ea

Eb

=‌

Qa

Qb

×‌

b2

a2

......(1)
‌‌

Qa

Qb

=‌

CaV

CbV

‌ Or, ‌‌‌

Qa

Qb

=‌

Ca

Cb

‌ Or, ‌‌‌

Qa

Qb

=‌

a

b

.......(2)
(since, Cd∕Cb=a∕b )
Putting in equation (1)
‌‌

Ea

Eb

=(‌

a

b

)×(‌

b2

a2

)
∴‌‌‌

Ea

Eb

‌=‌

b

a

OR
(b) (i) Initially,
Charge on A capacitor =CV
Charge on B capacitor =0
After connecting A with B,
‌ Final potential ‌=V′‌=‌

‌ Total Charge ‌

‌ total capacitance ‌

‌=‌

Q+0

C+2C

=‌

Q

3C

Final charge on A capacitor after redistribution
=CV′=‌

CQ

3C

=‌

Q

3

Final charge on B capacitor after redistribution
=2CV′=‌

2CQ

3C

=‌

2Q

3

So, the ratio of charges =‌

Q∕3

2Q∕3

=1:2
(ii) Initially energy stored in A=‌

1

2

CV2
Finally energy stored in A=‌

1

2

CV2
‌=‌

1

2

×C×(‌

Q

3C

)2
‌=‌

1

2

×C×(‌

V

3

)2
=‌

CV2

18

Finally energy stored in B=‌

1

2

2CV2
‌=‌

1

2

×2C×(‌

Q

3C

)2
‌=‌

1

2

×2C×(‌

V

3

)2
‌=‌

CV2

9

Total energy stored in A and B
‌=‌

CV2

18

+‌

CV2

9

‌=‌

CV2

6

So, the required ratio =‌

‌ Find energy stored in ‌A‌ and ‌B

‌ Initial energy stored in ‌A

‌=‌

CV2∕6

CV2∕2

‌=‌

1

3