Capacitors A capacitor is a device that has the ability “capacity” to store electric charge and energy.

Slides:



Advertisements
Similar presentations
1 Chapter 24--Examples. 2 Problem In the figure to the left, a potential difference of 20 V is applied across points a and b. a) What is charge on each.
Advertisements

LECTURE 11 Pick up reading quiz #2 lecture notes for Lecture 11 Course questionnaire Pick up reading quiz #2 lecture notes for Lecture 11 Course questionnaire.
Electric Potential Electric forces are conservative. Work done by an electric force is W=-q o Ed  U=-W.
Halliday/Resnick/Walker Fundamentals of Physics 8th edition
Chapter 17 Electric Potential.
Lecture 4 Capacitance and Capacitors Chapter 16.6  Outline Definition of Capacitance Simple Capacitors Combinations of Capacitors Capacitors with.
CAPACITORS SLIDES BY: ZIL E HUMA. OBJECTIVES CHARGING OF THE CAPACITORS DISCHARGING OF THE CAPACITORS DIELECTRIC MATERIALS FACTORS EFFECTING THE VALUES.
Chapter 17 Capacitance and Capacitors! C = q / V V= voltage q = charge
Capacitance and Dielectrics
Lecture 8 Capacitance and capacitors
Capacitance and Dielectrics
Bright Storm on Capacitors (Start to minute 7:10).
ELECTROMAGNETIS M LECTURE#09 Instructor: Muhammad Mateen Yaqoob.
Electric Potential Electric forces are conservative. Work done by an electric force is W=-q o Ed  U=-W.
Objectives: 1. Define and calculate the capacitance of a capacitor. 2. Describe the factors affecting the capacitance of the capacitor. 3. Calculate the.
1 Capacitance and Dielectrics Chapter 27 Physics chapter 27.
Lecture 8 Friday January 30 Capacitors and Review.
(Capacitance and capacitors)
Capacitance Physics Department, New York City College of Technology.
DC circuits Physics Department, New York City College of Technology.
Copyright © 2009 Pearson Education, Inc. Lecture 5 - Capacitance Capacitors & Dielectrics.
Chapter 6 Capacitors and Inductors
Chapter 26 Capacitance and Dielectrics. Concept Question 1.
Chapter 24 Capacitance, Dielectrics, Electric Energy Storage
Capacitors.
Capacitance.
Capacitance.
Capacitance, Capacitors and Circuits. Start with a review The capacitance C is defined as To calculate the capacitance, one starts by introduce Q to the.
Physics 6B Capacitors Prepared by Vince Zaccone For Campus Learning Assistance Services at UCSB.
Chapter 17 Electric Potential. Objectives: The students will be able to: Given the dimensions, distance between the plates, and the dielectric constant.
-Combinations of Capacitors -Energy Stored in a Charged Capacitor AP Physics C Mrs. Coyle.
DC Circuits. EMF and Terminal Voltage Electric circuit needs a battery or generator to produce current – these are called sources of emf. Battery is a.
GENERAL PHYSICS LECTURE Chapter 26 CAPACITANCE AND DIELECTRICS Nguyễn Thị Ngọc Nữ PhD: Nguyễn Thị Ngọc Nữ.
Capacitor An element that stores charge when a voltage is applied
Chapter 24 Capacitance, Dielectrics, Energy Storage.
Capacitors, Batteries. Capacitors Create a difference in Potential based upon how much charge is stored V = q/C (V) C : Capacitance C = k ε o A /d k :
111/16/2015 ELECTRICITY AND MAGNETISM Phy 220 Chapter 4: Capacitors.
Capacitance, Dielectrics, Energy Storage
Chapter 18 Pretest Capacitance and Potential. 1. The amount of charge that can be placed on a capacitor does not depend on: A) the area of the plates,
Lecture 06 - Inductors and Capacitors
Capacitance. Characteristics of a Capacitor No Dielectric Uniform Electric Field d Area Note: Net charge of the system.
Chapter 23 Electric Potential. Basics The potential due to an electric dipole is just the sum of the potentials due to each charge, and can be calculated.
Electric field, Electric Potential Difference and Capacitance.
Alexander-Sadiku Fundamentals of Electric Circuits
EKT 101 Electric Circuit Theory
Today’s agenda: Energy Storage in Capacitors. You must be able to calculate the energy stored in a capacitor, and apply the energy storage equations to.
DR. A. O. ADEWALE Course Outline: Electrostatics, potential and capacitance, dielectrics, production and measurement of static electricity. Current, Ohm’s.
What charge exists on a 30 μF capacitor (fully charged) with a 120 V potential difference between its plates and what is the energy stored? Ans: 3.6.
Review Question Describe what happens to the lightbulb after the switch is closed. Assume that the capacitor has large capacitance and is initially uncharged,
Objectives: 1. Define and calculate the capacitance of a capacitor. 2. Describe the factors affecting the capacitance of the capacitor. 3. Calculate the.
Objectives: 1. Define and calculate the capacitance of a capacitor. 2. Describe the factors affecting the capacitance of the capacitor. 3. Calculate the.
Review: Kirchoff’s Rules Activity 13C Achieved level: Qn. 1; Merit: Qn. 2, 3, 4, 5, 6 Excellence: Qn. 3 d, 6 b) iv. Challenge Problem on paper at the front.
Chapter 25 Capacitance In this chapter we will cover the following topics: -Capacitance C of a system of two isolated conductors.
Chapter 25 Capacitance In this chapter we will cover the following topics: -Capacitance C of a system of two isolated conductors.
Chapter 11 Capacitance.
Inductance and Capacitance
EKT 101 Electric Circuit Theory
EKT 101 Electric Circuit Theory
Capacitors, Batteries.
Lecture 09 - Inductors and Capacitors
Energy Storage in Capacitors.
What charge exists on a 30 μF capacitor (fully charged) with a 120 V potential difference between its plates and what is the energy stored? Ans: 3.6.
Physics 014 Capacitance.
Electrical energy By; Kemi and Kim.
FIGURE 12-1 A Leyden jar can be used to store an electrical charge.
FIGURE 12-1 A Leyden jar can be used to store an electrical charge.
Chapter 25 Capacitance-II
Capacitance and Capacitors
Capacitor An element that stores charge when a voltage is applied
Capacitor An element that stores charge when a voltage is applied
Presentation transcript:

Capacitors A capacitor is a device that has the ability “capacity” to store electric charge and energy.

Capacitors In a circuit diagram a capacitor is represented by two parallel lines of equal length

Capacitors

Figure A Parallel-Plate Capacitor

Capacitors

A dielectric material is an insulator that increases the capacitance of a capacitor when placed between the plates. Each material has a dielectric constant  not to be confused with k.(p 665)

Figure The Effect of a Dielectric on the Electric Field of a Capacitor

Capacitors

Capacitors connected in parallel have an equivalent capacity equal to the sum of the individual capacities.

Capacitors The charge on individual capacitors will be equal to

Capacitors The total charge in the circuit will be equal to

Capacitors Capacitors connected in series have an equivalent capacity whose reciprocal is equal to the sum of the reciprocals of the capacities of the individual capacitors.

Capacitors

Capacitors connected in series all have the same charge Q

Figure Capacitors in Series

Capacitors Voltage drops across capacitors connected in a series

Capacitors Voltage drops across capacitors connected in a series

Capacitors Capacitors connected in parallel have an equivalent capacitance which is equal to the sum of the capacitances of the individual capacitors.

Figure Capacitors in Parallel

Capacitors

Charges on capacitors connected in parallel are calculated by multiplying the voltage drop by individual capacitances.

Capacitors

Figure Capacitors in Parallel

Example 21-8 Energy in Parallel

Figure Capacitors in Series

Active Example 21-3 Find the Equivalent Capacitance and the Stored Energy

Figure A Typical RC Circuit

Figure Charge Versus Time for an RC Circuit

Figure Current Versus Time in an RC Circuit

Example 21-9 Charging a Capacitor

Figure Discharging a Capacitor

Figure Problems and 21-55

Figure Problems and 21-87

Figure Problem 21-78

Capacitors Solve problems on pages 711 and 712.