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Capacitance

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Q. A capacitor has a capacitance of 4μF and is charged to 12V. What is the charge on the capacitor?
  • A. 48μC
  • B. 12μC
  • C. 4μC
  • D. 3μC
Q. A capacitor is charged to a voltage of 10V and then connected to a resistor. What will happen to the voltage across the capacitor over time?
  • A. It increases
  • B. It decreases exponentially
  • C. It remains constant
  • D. It oscillates
Q. A capacitor is charged to a voltage V and then connected to a resistor R. What is the time constant of the circuit?
  • A. RC
  • B. C/R
  • C. R/C
  • D. 1/RC
Q. A capacitor is charged to a voltage V and then disconnected from the battery. If the distance between the plates is increased, what happens to the charge?
  • A. Increases
  • B. Decreases
  • C. Remains the same
  • D. Becomes zero
Q. A capacitor is charged to a voltage V and then disconnected from the battery. If the distance between the plates is doubled, what happens to the voltage across the capacitor?
  • A. It doubles
  • B. It halves
  • C. It remains the same
  • D. It quadruples
Q. A capacitor is charged to a voltage V and then disconnected from the battery. What happens to the charge on the capacitor?
  • A. It increases
  • B. It decreases
  • C. It remains constant
  • D. It becomes zero
Q. A capacitor is charged to a voltage V and then disconnected from the battery. What happens to the charge on the capacitor if the distance between the plates is increased?
  • A. Charge increases
  • B. Charge decreases
  • C. Charge remains the same
  • D. Charge becomes zero
Q. A capacitor is charged to a voltage V and then disconnected from the battery. What happens to the charge on the capacitor if the voltage is doubled?
  • A. Charge doubles
  • B. Charge halves
  • C. Charge remains the same
  • D. Charge quadruples
Q. A capacitor is charged to a voltage V and then the voltage is halved. What happens to the energy stored in the capacitor?
  • A. It doubles
  • B. It halves
  • C. It remains the same
  • D. It becomes zero
Q. A capacitor of capacitance C is charged to a voltage V and then connected in parallel with another uncharged capacitor of capacitance C. What is the final voltage across the capacitors?
  • A. V/2
  • B. V
  • C. 2V
  • D. 0
Q. A capacitor of capacitance C is charged to a voltage V and then connected to another uncharged capacitor of capacitance C. What is the final voltage across both capacitors?
  • A. V/2
  • B. V
  • C. 2V
  • D. 0
Q. A capacitor of capacitance C is charged to a voltage V. If the voltage is halved, what is the new energy stored in the capacitor?
  • A. U/4
  • B. U/2
  • C. U
  • D. 2U
Q. A capacitor of capacitance C is connected to a battery of voltage V. If the battery is removed and the capacitor is connected to another capacitor of capacitance 2C, what is the final voltage across the combination?
  • A. V/3
  • B. V/2
  • C. V
  • D. 2V
Q. If a capacitor has a capacitance of 10 µF and is charged to 5 V, what is the charge on the capacitor?
  • A. 50 µC
  • B. 5 µC
  • C. 2 µC
  • D. 10 µC
Q. If a capacitor is charged and then short-circuited, what happens to the charge on the capacitor?
  • A. It remains the same
  • B. It is discharged
  • C. It increases
  • D. It becomes zero
Q. If a capacitor is charged to a voltage V and then connected in parallel with an uncharged capacitor, what will be the final voltage across both capacitors?
  • A. V
  • B. V/2
  • C. 2V
  • D. 0
Q. If a capacitor is charged to a voltage V and then connected to a resistor R, what is the time constant of the circuit?
  • A. RC
  • B. R/C
  • C. C/R
  • D. 1/RC
Q. If a capacitor is charged to a voltage V and then short-circuited, what happens to the energy stored in the capacitor?
  • A. It is conserved
  • B. It is dissipated as heat
  • C. It increases
  • D. It becomes zero
Q. If a capacitor is charged to a voltage V and then short-circuited, what happens to the charge on the capacitor?
  • A. It remains the same
  • B. It becomes zero
  • C. It doubles
  • D. It halves
Q. If a capacitor is connected to a DC voltage source, what will happen to the current over time?
  • A. It remains constant
  • B. It increases
  • C. It decreases to zero
  • D. It oscillates
Q. If a capacitor is connected to an AC source, how does the current behave?
  • A. It is constant
  • B. It leads the voltage
  • C. It lags the voltage
  • D. It is zero
Q. If a capacitor is fully charged and then short-circuited, what happens to the stored energy?
  • A. It is released as heat
  • B. It is stored in the circuit
  • C. It remains in the capacitor
  • D. It is lost
Q. If a capacitor is fully discharged and then connected to a voltage source, what is the initial current through the circuit?
  • A. Zero
  • B. Maximum
  • C. Depends on resistance
  • D. Infinite
Q. If a capacitor of capacitance 4μF is connected to a 12V battery, what is the charge on the capacitor?
  • A. 48μC
  • B. 12μC
  • C. 4μC
  • D. 24μC
Q. If a capacitor of capacitance C is charged to a voltage V, what is the energy stored in the capacitor?
  • A. 1/2 CV^2
  • B. CV
  • C. V^2 / C
  • D. C / V
Q. If a capacitor of capacitance C is connected to a voltage source V, what is the charge on the capacitor?
  • A. C/V
  • B. V/C
  • C. CV
  • D. V^2/C
Q. If a capacitor with capacitance C is connected to a voltage V, what is the charge stored in the capacitor?
  • A. C/V
  • B. V/C
  • C. C * V
  • D. C + V
Q. If the distance between the plates of a capacitor is doubled, what happens to its capacitance?
  • A. It doubles
  • B. It halves
  • C. It remains the same
  • D. It quadruples
Q. If the distance between the plates of a capacitor is halved, what happens to its capacitance?
  • A. It doubles
  • B. It halves
  • C. It remains the same
  • D. It quadruples
Q. If two capacitors of capacitance C1 and C2 are connected in series, what is the equivalent capacitance?
  • A. C1 + C2
  • B. 1 / (1/C1 + 1/C2)
  • C. C1 * C2 / (C1 + C2)
  • D. C1 - C2
Showing 1 to 30 of 56 (2 Pages)

Capacitance MCQ & Objective Questions

Understanding capacitance is crucial for students preparing for school and competitive exams in India. This fundamental concept in physics not only appears frequently in objective questions but also helps in building a strong foundation for advanced topics. Practicing MCQs and objective questions on capacitance can significantly enhance your exam preparation, ensuring you are well-equipped to tackle important questions with confidence.

What You Will Practise Here

  • Definition and significance of capacitance
  • Types of capacitors and their applications
  • Key formulas related to capacitance, including capacitance in series and parallel
  • Energy stored in a capacitor and its derivation
  • Factors affecting capacitance
  • Diagrams illustrating capacitor configurations
  • Real-life applications of capacitors in circuits

Exam Relevance

Capacitance is a vital topic in various examinations such as CBSE, State Boards, NEET, and JEE. Students can expect questions that test their understanding of the basic principles of capacitance, as well as its applications in electrical circuits. Common question patterns include numerical problems, conceptual questions, and diagram-based queries, making it essential to grasp both theory and practical applications.

Common Mistakes Students Make

  • Confusing the units of capacitance (farads) with other electrical units
  • Misunderstanding the difference between series and parallel combinations of capacitors
  • Overlooking the effect of dielectric materials on capacitance
  • Failing to apply the correct formula in numerical problems
  • Neglecting to analyze circuit diagrams properly before answering questions

FAQs

Question: What is capacitance?
Answer: Capacitance is the ability of a system to store an electric charge, defined as the ratio of the electric charge on each conductor to the potential difference between them.

Question: How do capacitors affect circuit performance?
Answer: Capacitors can store and release energy, which helps in smoothing out voltage fluctuations and improving the overall performance of electrical circuits.

Now that you have a clear understanding of capacitance and its significance, it’s time to put your knowledge to the test! Solve practice MCQs and objective questions to solidify your understanding and excel in your exams. Remember, consistent practice is the key to success!

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