wo parallel-plate capacitors C1 and C2 are connected in parallel to a 12.0 V battery. Both capacitors have the same plate area of 5.30 cm2 and plate separation of 2.65 mm. However, the first capacitor - QAmmunity.org

wo parallel-plate capacitors C1 and C2 are connected in parallel to a 12.0 V battery. Both capacitors have the same plate area of 5.30 cm2 and plate separation of 2.65 mm. However, the first capacitor

asked Oct 8, 2021 93.4k views

1 Answer

Complete Question

Two parallel-plate capacitors C1 and C2 are connected in parallel to a 12.0 V battery. Both capacitors have the same plate area of 5.30 cm2 and plate separation of 2.65 mm. However, the first capacitor C1 is filled with air, while the second capacitor C2 is filled with a dielectric that has a dielectric constant of 2.10.

(a) What is the charge stored on each capacitor

(b) What is the total charge stored in the parallel combination?

Answer:

a

i
$Q_1 = 2.124 *10^(-11) \ C$

ii
$Q_2 = 4.4604 *10^(-11) \ C$

b

$Q_(eq) = 6.5844 *10^(-11) \ C$

Step-by-step explanation:

From the question we are told that

The voltage of the battery is
$V = 12.0 \ V$

The plate area of each capacitor is
$A = 5.30 \ cm^2 = 5.30 *10^(-4) \ m^2$

The separation between the plates is
$d = 2.65 \ mm = 2.65 *10^(-3) \ m$

The permittivity of free space has a value
$\epsilon_o = 8.85 *10^(-12) \ F/m$

The dielectric constant of the other material is
z = 2.10

The capacitance of the first capacitor is mathematically represented as

$C_1 = (\epsilon * A )/(d )$

substituting values

C_1 = (8.85 *10^(-12 ) * 5.30 *10^(-4) )/(2.65 *10^(-3) )

$C_1 = 1.77 *10^(-12) \ F$

The charge stored in the first capacitor is

Q_1 = C_1 * V

substituting values

Q_1 = 1.77 *10^(-12) * 12

$Q_1 = 2.124 *10^(-11) \ C$

The capacitance of the second capacitor is mathematically represented as

$C_2 = ( z * \epsilon * A )/(d )$

substituting values

C_1 = ( 2.10 *8.85 *10^(-12 ) * 5.30 *10^(-4) )/(2.65 *10^(-3) )

$C_1 = 3.717 *10^(-12) \ F$

The charge stored in the second capacitor is

Q_2 = C_2 * V

substituting values

Q_2 = 3.717*10^(-12) * 12

$Q_2 = 4.4604 *10^(-11) \ C$

Now the total charge stored in the parallel combination is mathematically represented as

Q_(eq) = Q_1 + Q_2

substituting values

Q_(eq) = 4.4604 *10^(-11) + 2.124*10^(-11)

$Q_(eq) = 6.5844 *10^(-11) \ C$

Bonlenfum answered Oct 15, 2021

6.8k points

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