Answer :
Answer:
a.[tex]60\mu C[/tex]
b.[tex]60\mu C[/tex]
Explanation:
We are given that
Capacitance of each capacitor=[tex]C=6\mu F[/tex]
Potential difference=V=10 V
a.We have to find the additional charge is transferred to the capacitors by the battery.
We know that
[tex]C=\frac{\epsilon_oA}{d}[/tex]
Capacitance is inversely proportional to the separation between the plates of capacitor.
When the separation between the plate is halved then the capacitance is doubled.
Therefore, Capacitance, [tex]C'_1[/tex]=2 C=[tex]2\times 6=12\mu F[/tex]
Initial charge=q=[tex]CV=6\mu F\times 10=60\mu C [/tex]
Final charge, q'=[tex]C'_1V=12\times 10=120\mu C[/tex]
Additional charge transferred=[tex]q'-q=120-60=60\mu C[/tex]
Additional charge transferred=[tex]60\mu C[/tex]
b.Initial total charge=[tex]q_i=(C_1+C_2)V=(6\mu+6\mu)(10)=120\mu C[/tex]
Final total charge=[tex]q_f=(12+6)(10)=180\mu C[/tex]
Increase in total charge=[tex]q_f-q_i=180\mu C-120\mu C=60\mu C[/tex]