Answer:
2 J
Explanation:
A charged capacitor of capacitance [tex]C_1[/tex] with energy of 7.54 J, is connected in parallel with another capacitor [tex]C_2[/tex] , so the charge is equally distributed between them.
(a) The energy stored in the capacitor before it being connected to the other capacitor is:
[tex]U_O=q_0^2/2C_1=7.54 J\\[/tex]
The energy stored in the electric field is the sum of the energies of the two capacitors:
[tex]U=U_1+U_2\\U=q_1^2/2C_1+q_2^2/2C_2[/tex]
since the charge equally distributed, [tex]q_1[/tex] = [tex]q_2[/tex] = [tex]q_o/2[/tex]. and since they are connected in parallel the potential difference on both of them is the same
:
[tex]V_1=V_2\\q_1/C_1=q_2/C_2\\q_0/C_1=q_0/C_2\\C_1=C_2=C_3\\[/tex]
hence,
[tex]U=q_0^2/8C+q_0^2/8C\\U=q_0^2/4C\\U=2J[/tex]
