AC Voltage Applied to a Capacitor MCQ Quiz - Objective Question with Answer for AC Voltage Applied to a Capacitor - Download Free PDF

Last updated on Mar 17, 2025

Latest AC Voltage Applied to a Capacitor MCQ Objective Questions

AC Voltage Applied to a Capacitor Question 1:

In an alternating current circuit consisting of elements in series, the current increases on increasing the frequency of supply. Which of the following elements are likely to constitute the circuit ?

  1. Only resistor.
  2. Resistor and an inductor.
  3. Resistor and a capacitor.
  4. Only a capacitor.

Answer (Detailed Solution Below)

Option :

AC Voltage Applied to a Capacitor Question 1 Detailed Solution

EXPLANATION:

→For circuits consisting of L or C we use the word Reactance in the place of Resistance of the circuit. 

The reactance of a purely inductive circuit is XL = 2πfL

The reactance of a purely capacitive circuit is XC = 1/2πfC

(Where, C = capacitance, L = inductance, f = frequency of the AC circuit)

And a purely resistive circuit does not show any change with changing frequency. 

→Therefore from the above relations we can say,

The reactance of an inductive circuit (XL) increases with the increasing frequency (f) of the AC circuit. 

∴ the current decreases with increasing frequency (f).

The reactance of a capacitive circuit (XC) increases with the increasing frequency (f) of the AC circuit. 

∴ the current increases with increasing frequency (f).

∴ The required circuit will be either an RC circuit or a purely capacitive circuit.

So, the correct answers are option (3) and (4).

AC Voltage Applied to a Capacitor Question 2:

A pure capacitor of capacitance 100μF is connected to an AC voltage, V = 100.sin(10t). Find the maximum current in the circuit.

  1. 10 A
  2. 1 A
  3. 0.1 A
  4. None of these

Answer (Detailed Solution Below)

Option 3 : 0.1 A

AC Voltage Applied to a Capacitor Question 2 Detailed Solution

CONCEPT:

Capacitive reactance:

  • The capacitive reactance is the opposition offered by the capacitor in an AC circuit to the flow of ac current.
  • Its SI unit is Ohm(Ω).
  • The capacitive reactance is given as,

Where ω = angular frequency, f = frequency of ac current and C = capacitance

Impedance:

  • Impedance is essentially everything that obstructs the flow of electrons within an electrical circuit.
  • For a pure capacitor, the capacitive reactance is equal to the impedance.

AC voltage applied to a capacitor:

  • When an AC voltage is applied to a capacitor, the current in the circuit is given as,

  • In a pure capacitor circuit, the current is ahead of the voltage by one-fourth of a period.

CALCULATION:

Given C = 100μF = 100 × 10-6 F, and V = 100 sin(10t)

∵ V = 10.sin(10t)

  • The maximum voltage is given as,

⇒ Vmax = 100 V     -----(1)

And angular frequency is given as,

⇒ ω = 10 rad/sec     -----(2)

We know that the capacitive reactance is given as,

     -----(3)

Where ω = angular frequency, and C = capacitance

By equation 2 and equation 3,

⇒ XC = 1000 Ω     -----(4)

  • When an AC voltage is applied to a capacitor, the current in the circuit is given as,

     -----(5)

By equation 1, equation 4, and equation 5, the maximum current in the circuit is given as,

⇒ Imax = 0.1 A

  • Hence option 3 is correct.

AC Voltage Applied to a Capacitor Question 3:

An AC voltage is applied across a capacitor. If the frequency of the supply voltage is doubled, then the capacitive reactance will become:

  1. Double
  2. Half
  3. Remain unchanged
  4. Can't say

Answer (Detailed Solution Below)

Option 2 : Half

AC Voltage Applied to a Capacitor Question 3 Detailed Solution

CONCEPT:

Capacitive reactance:

  • The capacitive reactance is the opposition offered by the capacitor in an AC circuit to the flow of ac current.
  • Its SI unit is Ohm(Ω).
  • The capacitive reactance is given as,

Where ω = angular frequency, f = frequency of ac current and C = capacitance

Impedance:

  • Impedance is essentially everything that obstructs the flow of electrons within an electrical circuit.
  • For a pure capacitor, the capacitive reactance is equal to the impedance.

AC voltage applied to a capacitor:

  • When an AC voltage is applied to a capacitor, the current in the circuit is given as,

  • In a pure capacitor circuit, the current is ahead of the voltage by one-fourth of a period.

CALCULATION:

  • We know that the capacitive reactance is given as,

     -----(1)

Where f = frequency of ac current and C = capacitance

For case 1:

     -----(2)

For case 2: (f' = 2f)

     -----(3)

By equation 2 and equation 3,

  • Hence option 2 is correct.

AC Voltage Applied to a Capacitor Question 4:

A 28 μF capacitor is connected to a 220 V, 50 Hz source. Find the capacitive reactance (Use )

  1. 100 Ω
  2. 113 Ω
  3. 123 Ω
  4. None of these

Answer (Detailed Solution Below)

Option 2 : 113 Ω

AC Voltage Applied to a Capacitor Question 4 Detailed Solution

CONCEPT:

Capacitive reactance:

  • The capacitive reactance is the opposition offered by the capacitor in an AC circuit to the flow of ac current.
  • Its SI unit is Ohm(Ω).
  • The capacitive reactance is given as,

Where ω = angular frequency, f = frequency of ac current and C = capacitance

Impedance:

  • Impedance is essentially everything that obstructs the flow of electrons within an electrical circuit.
  • For a pure capacitor, the capacitive reactance is equal to the impedance.

AC voltage applied to a capacitor:

  • When an AC voltage is applied to a capacitor, the current in the circuit is given as,

  • In a pure capacitor circuit, the current is ahead of the voltage by one-fourth of a period.

CALCULATION:

Given C = 28 μF = 28×10-6, V = 220 V, and f = 50 Hz

  • We know that the capacitive reactance is given as,

⇒ XC = 113 Ω

  • Hence option 2 is correct.

AC Voltage Applied to a Capacitor Question 5:

If the frequency of the AC voltage is increased in the circuit containing a capacitor, then the capacitive reactance will:

  1. Increase
  2. Decrease
  3. Remain unchanged
  4. Can't say

Answer (Detailed Solution Below)

Option 2 : Decrease

AC Voltage Applied to a Capacitor Question 5 Detailed Solution

CONCEPT:

Capacitive reactance:

  • The capacitive reactance is the opposition offered by the capacitor in an AC circuit to the flow of ac current.
  • Its SI unit is Ohm(Ω).
  • The capacitive reactance is given as,

Where ω = angular frequency, f = frequency of ac current and C = capacitance

Impedance:

  • Impedance is essentially everything that obstructs the flow of electrons within an electrical circuit.
  • For a pure capacitor, the capacitive reactance is equal to the impedance.

AC voltage applied to a capacitor:

  • When an AC voltage is applied to a capacitor, the current in the circuit is given as,

  • In a pure capacitor circuit, the current is ahead of the voltage by one-fourth of a period.

EXPLANATION:

We know that the capacitive reactance is given as,

     -----(1)

Where f = frequency of ac current and C = capacitance

  • By equation 1 it is clear that the capacitive reactance is inversely proportional to the frequency of the AC voltage.
  • Therefore if the frequency of the AC voltage is increased in the circuit containing a capacitor, then the capacitive reactance will decrease. Hence option 2 is correct.

Top AC Voltage Applied to a Capacitor MCQ Objective Questions

An AC voltage is applied to a purely capacitive circuit. The current in the circuit ______.

  1. lags the voltage by one-fourth of a cycle
  2. lags the voltage by one-half of a cycle
  3. leads the voltage by one-fourth of a cycle
  4. leads the voltage by one-half of a cycle

Answer (Detailed Solution Below)

Option 3 : leads the voltage by one-fourth of a cycle

AC Voltage Applied to a Capacitor Question 6 Detailed Solution

Download Solution PDF

Concept:

circuit that has the only capacitor is known as a purely capacitive circuit.

Explanation:

When the Alternating emf is running in the circuit is

e = e0 sin ωt

Current in the inductive circuit is –

From above it is clear that current leads the voltage by π/2.

 

 

The Phase difference between current and voltage in the pure capacitive circuit is 90° or π/2.

A complete cycle makes an angle of 360o, and the Phase difference between current and voltage is 90o Hence, current leads the voltage by one-fourth of a cycle

Important Points

When the circuit is purely resistive, inductive, and capacitive.

Capacitive reactance is equal to __________.

  1. ωC
  2. 1/(ωC)
  3. ω/C
  4. C/ω

Answer (Detailed Solution Below)

Option 2 : 1/(ωC)

AC Voltage Applied to a Capacitor Question 7 Detailed Solution

Download Solution PDF

CONCEPT:

  • circuit that has the only capacitor is known as a purely capacitive circuit.

EXPLANATION:

  • Capacitive reactance is defined as the resistance offered to the flow of current by the capacitor.
    • It is denoted by the letter XL.
  • The capacitive reactance is given by:

\(\Rightarrow{X_c} = \frac{1}{{\omega C}} = \frac{1}{{2\pi \nu C}} \)

Where C = capacitance and f = supply frequency

  • Capacitive reactance is inversely proportional to the supply frequency, i.e.

  • If the frequency increases, the capacitive reactance decreases and vice-versa.

  • Alternating emf in the circuit is
  • Current in the inductive circuit is –
  • From above it is clear that current leads the voltage by π/2.

 

If the frequency of the AC voltage is increased in the circuit containing a capacitor, then the capacitive reactance will:

  1. Increase
  2. Decrease
  3. Remain unchanged
  4. Can't say

Answer (Detailed Solution Below)

Option 2 : Decrease

AC Voltage Applied to a Capacitor Question 8 Detailed Solution

Download Solution PDF

CONCEPT:

Capacitive reactance:

  • The capacitive reactance is the opposition offered by the capacitor in an AC circuit to the flow of ac current.
  • Its SI unit is Ohm(Ω).
  • The capacitive reactance is given as,

Where ω = angular frequency, f = frequency of ac current and C = capacitance

Impedance:

  • Impedance is essentially everything that obstructs the flow of electrons within an electrical circuit.
  • For a pure capacitor, the capacitive reactance is equal to the impedance.

AC voltage applied to a capacitor:

  • When an AC voltage is applied to a capacitor, the current in the circuit is given as,

  • In a pure capacitor circuit, the current is ahead of the voltage by one-fourth of a period.

EXPLANATION:

We know that the capacitive reactance is given as,

     -----(1)

Where f = frequency of ac current and C = capacitance

  • By equation 1 it is clear that the capacitive reactance is inversely proportional to the frequency of the AC voltage.
  • Therefore if the frequency of the AC voltage is increased in the circuit containing a capacitor, then the capacitive reactance will decrease. Hence option 2 is correct.

Capacitive reactance is equal to _______. 

  1. 2πνC
  2. ωL 

Answer (Detailed Solution Below)

Option 2 :

AC Voltage Applied to a Capacitor Question 9 Detailed Solution

Download Solution PDF

CONCEPT:

  • circuit that has the only capacitor is known as a purely capacitive circuit.

EXPLANATION:

  • Capacitive reactance is defined as the resistance offered to the flow of current by the capacitor.
    • It is denoted by letter XC.
  • The capacitive reactance is given by:

Where C = capacitance and ν = supply frequency

  • Capacitive reactance is inversely proportional to the supply frequency, i.e.

  • If the frequency increases, the capacitive reactance decreases and vice-versa.
  • Alternating emf in the circuit is
  • Current in the inductive circuit is –
  • From above it is clear that current leads the voltage by π/2.

 

The energy 'U' stored in a capacitor of capacitance 'C', with charge 'Q' and voltage 'V' is ________________.

  1. U = CQ2/2
  2. U = C2V/2
  3. U = CV2/2
  4. U = C2Q/2

Answer (Detailed Solution Below)

Option 3 : U = CV2/2

AC Voltage Applied to a Capacitor Question 10 Detailed Solution

Download Solution PDF

CONCEPT:

Energy stored in capacitor:

  • capacitor is a device to store energy.
  • The process of charging up a capacitor involves the transferring of electric charges from one plate to another.
  • The work done in charging the capacitor is stored as its electrical potential energy.
  • The energy stored in the capacitor is

Where

Q = charge stored on the capacitor,

U = energy stored in the capacitor,

C = capacitance of the capacitor

V = Electric potential difference

Explanation:

From the above explanation, we can see that energy stored in the capacitor is directly proportional to capacitance and square of electric potential.

i.e, 

For an RC circuit in series, the RMS value of voltage across capacitor is VC = 60 Volt and across resistance is VR = 80 Volt. Find the RMS value of the voltage of the circuit.

  1. 40 V
  2. 140 V
  3. 20 V
  4. 100 V

Answer (Detailed Solution Below)

Option 4 : 100 V

AC Voltage Applied to a Capacitor Question 11 Detailed Solution

Download Solution PDF

CONCEPT

  • Overall Impedance (Z) in a series combination of an inductor(L) a capacitor (C), and a resistor (R):

where R is resistance, ωL is the inductance reactance and 1/ωC is Capacitance reactance.

Similarly, the Overall RMS value of voltage is given by:

where E is the emf, VR is the potential drop across the resistor, VL is the potential drop across the inductance, and VR is the potential drop across the capacitance.

CALCULATION:

Given that VR = 80V; VL = 0; VC = 60V

E = 100 Volt

So the correct answer is option 4.

The current through the capacitor is _____________ of the applied voltage.

  1. π/2 ahead
  2. π/2 behind
  3. π ahead
  4. π behind

Answer (Detailed Solution Below)

Option 1 : π/2 ahead

AC Voltage Applied to a Capacitor Question 12 Detailed Solution

Download Solution PDF

CONCEPT:

  • circuit that has the only capacitor is known as a purely capacitive circuit.

  • Capacitive reactance (XL) is defined as the resistance offered to the flow of current by the capacitor.

The capacitive reactance is given by:

Where C = capacitance and f = supply frequency

EXPLANATION:​

The alternating emf in the circuit is:

Current in the capacitive circuit is:

From above it is clear that electric current through the capacitor leads the applied voltage by π/2.

So option 1 is correct.

The curve showing correct variation of capacitative reactance XC  with frequency f is:

Answer (Detailed Solution Below)

Option 3 :

AC Voltage Applied to a Capacitor Question 13 Detailed Solution

Download Solution PDF

CONCEPT:

  • Reactance: It is basically the inertia against the motion of the electrons in an electrical circuit.
  • There are two types of reactance:

    1. Capacitive reactance (XC) (Ohms is the unit)

    2. Inductive reactance (XL) (Ohms is the unit)

EXPLANATION:

VARIATIONS OF DIFFERENT QUANTITIES WITH FREQUENCY

The variations of reactance with frequency are shown in Fig

Variation of inductive reactance XL

  • The inductive reactance XL (= 2πfL) is directly proportional to the frequency f, hence its graph is a straight line through the origin.

Variation of capacitive reactance XC

  • The capacitive reactance XC [= 1/(2πfC)] is inversely proportional to the frequency, hence its graph is a rectangular hyperbola. XL versus f and XC versus f curves cut at a point where f = f0

Variation of net reactance X

  • The graph of net reactance x (= XL - XC) is obtained from XL versus f and -XC versus f curves. It is a hyperbola (but not a rectangular hyperbola). This curve crosses the frequency axis at a point where f = f0.

An AC voltage is applied across a capacitor. If the frequency of the supply voltage is doubled, then the capacitive reactance will become:

  1. Double
  2. Half
  3. Remain unchanged
  4. Can't say

Answer (Detailed Solution Below)

Option 2 : Half

AC Voltage Applied to a Capacitor Question 14 Detailed Solution

Download Solution PDF

CONCEPT:

Capacitive reactance:

  • The capacitive reactance is the opposition offered by the capacitor in an AC circuit to the flow of ac current.
  • Its SI unit is Ohm(Ω).
  • The capacitive reactance is given as,

Where ω = angular frequency, f = frequency of ac current and C = capacitance

Impedance:

  • Impedance is essentially everything that obstructs the flow of electrons within an electrical circuit.
  • For a pure capacitor, the capacitive reactance is equal to the impedance.

AC voltage applied to a capacitor:

  • When an AC voltage is applied to a capacitor, the current in the circuit is given as,

  • In a pure capacitor circuit, the current is ahead of the voltage by one-fourth of a period.

CALCULATION:

  • We know that the capacitive reactance is given as,

     -----(1)

Where f = frequency of ac current and C = capacitance

For case 1:

     -----(2)

For case 2: (f' = 2f)

     -----(3)

By equation 2 and equation 3,

  • Hence option 2 is correct.

A pure capacitor of capacitance 100μF is connected to an AC voltage, V = 100.sin(10t). Find the maximum current in the circuit.

  1. 10 A
  2. 1 A
  3. 0.1 A
  4. None of these

Answer (Detailed Solution Below)

Option 3 : 0.1 A

AC Voltage Applied to a Capacitor Question 15 Detailed Solution

Download Solution PDF

CONCEPT:

Capacitive reactance:

  • The capacitive reactance is the opposition offered by the capacitor in an AC circuit to the flow of ac current.
  • Its SI unit is Ohm(Ω).
  • The capacitive reactance is given as,

Where ω = angular frequency, f = frequency of ac current and C = capacitance

Impedance:

  • Impedance is essentially everything that obstructs the flow of electrons within an electrical circuit.
  • For a pure capacitor, the capacitive reactance is equal to the impedance.

AC voltage applied to a capacitor:

  • When an AC voltage is applied to a capacitor, the current in the circuit is given as,

  • In a pure capacitor circuit, the current is ahead of the voltage by one-fourth of a period.

CALCULATION:

Given C = 100μF = 100 × 10-6 F, and V = 100 sin(10t)

∵ V = 10.sin(10t)

  • The maximum voltage is given as,

⇒ Vmax = 100 V     -----(1)

And angular frequency is given as,

⇒ ω = 10 rad/sec     -----(2)

We know that the capacitive reactance is given as,

     -----(3)

Where ω = angular frequency, and C = capacitance

By equation 2 and equation 3,

⇒ XC = 1000 Ω     -----(4)

  • When an AC voltage is applied to a capacitor, the current in the circuit is given as,

     -----(5)

By equation 1, equation 4, and equation 5, the maximum current in the circuit is given as,

⇒ Imax = 0.1 A

  • Hence option 3 is correct.

Hot Links: teen patti apk teen patti yas teen patti list teen patti master online