Answer:
U=0.0517 J
Explanation:
Given that
The values of capacitance
C₁ = 36 µF
C₂ = 3.8 µF
We know that when capacitor are connected in the parallel then the equivalent value of the capacitance is given as
C=C₁ +C₂
Now by putting the values
C= 36 + 3.8 µF
C = 39.8 µF
The voltage difference
ΔV= 51 V
The total stored energy in capacitor is given as
[tex]U=\dfrac{1}{2}C\Delta V^2[/tex]
Now by putting the values in the above equation we get
[tex]U=\dfrac{1}{2}\times 39.8\times 10^{-6}\times 51^2\ J[/tex]
U=0.0517 J
Therefore the stored energy in the capacitors will be 0.0517 J.
