Capacitance AP Physics B.

Slides:



Advertisements
Similar presentations
Ch. 20 Electric Potential and Electric Potential Energy
Advertisements

Electrical Energy, Potential and Capacitance
Chapter 24 Capacitance, Dielectrics, Electric Energy Storage
Ch 17: Electric Potential and Electric Potential Energy
CAPACITORS. WHAT IS A CAPACITOR? A Capacitor is a device that stores an electrical charge or energy on it’s plate.
Capacitance and Dielectrics AP Physics C. Applications of Electric Potential Is there any way we can use a set of plates with an electric field? YES!
Fall 2008Physics 231Lecture 4-1 Capacitance and Dielectrics.
Halliday/Resnick/Walker Fundamentals of Physics 8th edition
Capacitors1 THE NATURE OF CAPACITANCE All passive components have three electrical properties Resistance, capacitance and inductance Capacitance is a measure.
17-7 Capacitance A device that stores electric charge Two plates that are separated by an insulator Used in electronic circuits Store charge that can later.
Capacitance and Dielectrics AP Physics C. Commercial Capacitor Designs Section
Capacitors insulating dielectric Capacitors store charge. They have two metal plates where charge is stored, separated by an insulating dielectric. To.
Capacitance and Dielectrics AP Physics C. Applications of Electric Potential Is there any way we can use a set of plates with an electric field? YES!
1 Capacitance and Dielectrics Chapter 27 Physics chapter 27.
Capacitance Definition Parallel Plate Capacitors Cylindrical Capacitor
Capacitance Physics Department, New York City College of Technology.
Copyright © 2009 Pearson Education, Inc. Lecture 5 - Capacitance Capacitors & Dielectrics.
Chapter 26 Capacitance and Dielectrics. Concept Question 1.
Chapter 18 – Electric Potential and Capacitance Section 1 Electric Potential Energy.
Chapter 24 Capacitance, Dielectrics, Electric Energy Storage
Capacitors.
Capacitance and Dielectrics AP Physics C. Commercial Capacitor Designs Section
Electrical Energy and Capacitance. Electrical Potential Energy Potential energy associated with the electrical force between two charges Form of mechanical.
Capacitance.
Chapter 24 Capacitance, Dielectrics, Electric Energy Storage.
Capacitance PHY 2049 Chapter 25 Chapter 25 Capacitance In this chapter we will cover the following topics: -Capacitance C of a system of two isolated.
Introduction to Engineering Camera Lab #4 – 1 Introduction.
Capacitance. Characteristics of a Capacitor No Dielectric Uniform Electric Field d Area Note: Net charge of the system.
CHAPTER 26 : CAPACITANCE AND DIELECTRICS
Today’s agenda: Capacitance. You must be able to apply the equation C=Q/V. Capacitors: parallel plate, cylindrical, spherical. You must be able to calculate.
Capacitors The capacitor is an element that continuously stores charge (energy), for later use over a period of time! In its simplest form, a capacitor.
Plan for Today (AP Physics I) Lecture/Notes on Capacitors.
Capacitance The potential of a conductor and the charge on it are directly proportional to eachother.
Electrical Energy and Potential AP Physics 2. Electric Fields and WORK In order to bring two like charges near each other work must be done. In order.
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.
Lecture #25: Electric Circuits Continued AP Physics B.
TECHNOLOGIES ESO 4 UNIT 1: ELECTRICITY AND ELECTRONICS ANALOGIC ELECTRONICS (PART 1)
Storing Electrical Energy Capacitors. Overview Storing electrical charge Defining capacitance Applications Relationships.
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.
Capacitor Device that can store electric charge Two conducting objects are placed near one another but not touching Power source charges up the plates,
PES 1000 – Physics in Everyday Life
Electric Energy and Capacitance
Capacitance and Dielectrics
Plan for Today (AP Physics I)
Capacitance In the picture below, the capacitor is symbolized by a set of parallel lines. Once it's charged, the capacitor has the same voltage as the.
Capacitance and Dielectrics
Electrical Energy, Potential and Capacitance
Capacitors A capacitor is a device for storing charge and electrical potential energy. All capacitors consists of two metal plates separated by an insulator.
Applications of Electric Potential
Capacitance and Dielectric
Electrical Energy and Potential
Key Points from Chapter 30
Capacitors.
Phys102 Lecture 7/8 Capacitors
16.6 Capacitance A capacitor is a device used in a variety of electric circuits The capacitance, C, of a capacitor is defined as the ratio of the magnitude.
Potential Difference and Capacitance
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.
Electrical Energy and Potential
Chapter 18: Electrical Potential Energy
Capacitance AP Physics 2.
Electrical Energy, Potential and Capacitance
Electrical Energy, Potential and Capacitance
Capacitance and Capacitors
Capacitor Is a device that stores energy by maintaining a separation between positive and negative charge. Compare stored energy / charge to a bucket.
Warm Up: Determine the capacitance of a single capacitor that will have the same effect as the combination shown below. Each Capacitor has a Capacitance.
Capacitance and Dielectrics Test: Wednesday 2/27
Electrical Energy, Potential and Capacitance
Electrical Energy, Potential and Capacitance
Capacitance PHY 2049 Chapter 25.
Capacitance PHY 2049 Chapter 25.
Presentation transcript:

Capacitance AP Physics B

Applications of Electric Potential Is there any way we can use a set of plates with an electric field? YES! We can make what is called a Parallel Plate Capacitor and Store Charges between the plates! Storing Charges- Capacitors A capacitor consists of 2 conductors of any shape placed near one another without touching. It is common; to fill up the region between these 2 conductors with an insulating material called a dielectric. We charge these plates with opposing charges to set up an electric field.

Capacitors in Kodak Cameras Capacitors can be easily purchased at a local Radio Shack and are commonly found in disposable Kodak Cameras. When a voltage is applied to an empty capacitor, current flows through the capacitor and each side of the capacitor becomes charged. The two sides have equal and opposite charges. When the capacitor is fully charged, the current stops flowing. The collected charge is then ready to be discharged and when you press the flash it discharges very quickly released it in the form of light. Cylindrical Capacitor

Capacitance In the picture below, the capacitor is symbolized by a set of parallel lines. Once it's charged, the capacitor has the same voltage as the battery (1.5 volts on the battery means 1.5 volts on the capacitor) The difference between a capacitor and a battery is that a capacitor can dump its entire charge in a tiny fraction of a second, where a battery would take minutes to completely discharge itself. That's why the electronic flash on a camera uses a capacitor -- the battery charges up the flash's capacitor over several seconds, and then the capacitor dumps the full charge into the flash tube almost instantly

Measuring Capacitance Let’s go back to thinking about plates! The unit for capacitance is the FARAD, F.

Capacitor Geometry The capacitance of a capacitor depends on HOW you make it.

Capacitor Problems What is the AREA of a 1F capacitor that has a plate separation of 1 mm? Is this a practical capacitor to build? NO! – How can you build this then? The answer lies in REDUCING the AREA. But you must have a CAPACITANCE of 1 F. How can you keep the capacitance at 1 F and reduce the Area at the same time? 1.13x108 m2 10629 m Add a DIELECTRIC!!!

Dielectric Remember, the dielectric is an insulating material placed between the conductors to help store the charge. In the previous example we assumed there was NO dielectric and thus a vacuum between the plates. All insulating materials have a dielectric constant associated with it. Here now you can reduce the AREA and use a LARGE dielectric to establish the capacitance at 1 F.

Using MORE than 1 capacitor Let’s say you decide that 1 capacitor will not be enough to build what you need to build. You may need to use more than 1. There are 2 basic ways to assemble them together Series – One after another Parallel – between a set of junctions and parallel to each other.

Capacitors in Series Capacitors in series each charge each other by INDUCTION. So they each have the SAME charge. The electric potential on the other hand is divided up amongst them. In other words, the sum of the individual voltages will equal the total voltage of the battery or power source.

Capacitors in Parallel In a parallel configuration, the voltage is the same because ALL THREE capacitors touch BOTH ends of the battery. As a result, they split up the charge amongst them.

Capacitors “STORE” energy Anytime you have a situation where energy is “STORED” it is called POTENTIAL. In this case we have capacitor potential energy, Uc Suppose we plot a V vs. Q graph. If we wanted to find the AREA we would MULTIPLY the 2 variables according to the equation for Area. A = bh When we do this we get Area = VQ Let’s do a unit check! Voltage = Joules/Coulomb Charge = Coulombs Area = ENERGY

Potential Energy of a Capacitor Since the AREA under the line is a triangle, the ENERGY(area) =1/2VQ This energy or area is referred as the potential energy stored inside a capacitor. Note: The slope of the line is the inverse of the capacitance. most common form