Period 17 Activity Solutions: Induction Motors and Transformers

Size: px
Start display at page:

Download "Period 17 Activity Solutions: Induction Motors and Transformers"

Transcription

1 Period 17 Activity Solutions: Induction Motors and Transformers Activity 17.1: How Can Current Be Induced in a Closed Circuit? a) Connect the tan coil of wire to the large galvanometer that measures electric current. Move a magnet near and into the wire coil. Describe what happens. A current is induced in the wire when the magnet moves near to and into the coil of wire. The galvanometer measures this current. b) Hold the magnet still and move the coil of wire. Describe what happens. The galvanometer again measures current flowing through the wire. The direction of current flow depends on the direction the wire moves relative to the magnet. c) What happens if neither the magnet nor the wire is moving? No current flows. One (either the magnet or the wire) must be moving. Activity 17.2: How Do Generators Work? a) Attach a hand-cranked generator to a small motor and turn the crank. Explain what happens inside the generator when the crank turns to create a current. The crank spins a coil of wire relative to a magnet located inside the generator. This movement causes the wire to experience a changing magnetic field, which induces current in the wire. b) List the energy conversions that take place when you crank the generator and make the motor s shaft turn. The chemical energy (of your body) kinetic energy of the moving coil electrical energy kinetic energy of the moving motor shaft c) Connect one hand-cranked generator to a second hand-cranked generator and make the second generator spin. How is this activity similar to a generating plant? How is it similar to a motor? Both motors and generators use changing magnetic fields. Motors convert electrical energy into kinetic energy, while generators convert kinetic energy into electrical energy. Generators use kinetic energy to spin coils of wire near magnets, creating a changing magnetic field. The changing field induces a current in the wires. Motors use a changing electric current to produce a changing magnetic field, which spins a rotor by attracting and repelling it. Activity 17.3: Is Induced Current Alternating or Direct Current? a) Move a magnet into and out of the small coil of wire with red and green bulbs attached. How must you move the magnet so that the red bulbs light and then the green bulbs light? When you move the magnet into the coil one color of bulb lights, and when you move the magnet out of the coil the other color of bulb lights. The lights are designed to respond to current moving in one direction only. Thus, the red lights go on when the current flows in one direction, and the green lights go on when the current flows in the opposite direction. 65

2 b) Is the current that you induce as you move the magnet in and out of the coil direct current (DC) or alternating current (AC)? _AC_ How do you know? When you change direction of the motion of the magnet, you create a changing magnetic field that induces a changing (alternating) current. c) Connect the hand-cranked generator to the coil with red and green bulbs and turn the crank. Are you generating AC or DC current? If you turn the crank in one direction to light only one color of bulb, you have generated DC current. Turning the crank in alternating directions to light both colors of bulbs generates AC current. Activity 17.4: What Is Induced Magnetism? a) Your instructor will demonstrate a pendulum, which swings between the poles of a large magnet. On the end of the pendulum are discs of various shapes. 1) Which shape of disc causes the pendulum to stop abruptly? The solid disc. 2) Which shape of disc permits the pendulum to swing freely? The disc with a slit. b) Hold the long aluminum tube upright with a foam pad on the floor beneath it. Drop one blue slug down the tube. Now drop the other blue slug down the tube. 1) What is the difference between the two blue slugs? One of the slugs is a magnet. 2) Explain what you observed using the principles of induced magnetism. The falling magnet creates a changing magnetic field, which induces a changing current in the pipe. This current induces a second magnetic field inside the pipe. The two magnetic fields exert forces on each other, slowing the magnet s fall. c) Using your observations from parts a) and b), what can you conclude about the force between the induced magnetism and the magnet that induces it? The swinging pendulum stopped and the magnet falling through the tube slowed down, indicating that the force between the magnet and the induced magnetism opposes the motion of the moving object (the pendulum disc or falling magnet). d) Your instructor will demonstrate a large solenoid, which is connected to a variable current source. 1) What happens when a small light bulb is placed near the solenoid? The bulb lights. The alternating current through the solenoid creates a changing magnetic field around the solenoid. The changing magnetic field induces a current in any nearby conductor. The induced current flows through the bulb. 2) What happens when a solid ring is placed over the solenoid? The ring levitates (jumps up). The changing magnetic field created by the solenoid induces a changing current in the ring. This current creates a magnetic field around the ring. The two magnetic fields repel, causing the ring to jump. 66

3 3) What happens when a ring with a slit is placed over the solenoid? Nothing happens. The ring does not jump because the slit in the ring creates an open circuit. Current cannot flow around the ring, so the ring has no induced magnetic field around it. 4) Move a solid ring and a slit ring over the end of a large U-shaped magnet. What do you feel when you move the rings? As you move the solid ring over the end of the magnet, you feel a force. You feel no force when the slit ring moves over the end of the magnet. 5) Why is there a difference between the solid ring and the slit ring? The solid ring has an induced magnetic field around it. The slit ring has no current flowing, so no magnetic field is induced. Activity 17.5: What Is an Induction Motor? Your instructor will demonstrate several induction motors. a) What happens when your instructor holds a disc and a shield near the large solenoid? The disc rotates. The changing magnetic field created by the solenoid induces a current in the disc. The induced current flowing through the disc induces a magnetic field around the disc. The two magnetic fields interact and cause the disc to rotate. The shield covers part of the solenoid and produces a nonuniform magnetic field. b) Examine the small black induction motor on your table. Why doesn t this motor need a permanent magnet? Induction motors use magnetic fields from two electromagnets. One of the electromagnets is in the circular shell of the motor and a second electromagnet is induced around the rotor. c) Explain what causes the rotor in an induction motor to turn. Induction motors use a rotor made of a conducting, nonmagnetic material. The rotor is surrounded by a stationary electromagnet. The changing magnetic field from this electromagnet induces a current in the rotor. The induced current in the rotor induces a magnetic field around the rotor. The rotor s magnetic field interacts with the stationary magnetic field and the rotor spins. d) A watt hour meter is an example of an induction motor. How is the watt hour meter similar to the spinning disc your instructor held near the large solenoid? Current flowing through wires in the meter induces a changing magnetic field. This changing magnetic field induces a current in the meter s disc. The current induces a magnetic field around the disc, which interacts with the first magnetic field, causing the disc to spin. Activity 17.6: How Do Transformers Work? a) Your instructor will discuss transformers and the relationship between the number of turns of wire and the voltage of a transformer s secondary coil. 67

4 Describe the relationship between the number of turns of wire and the voltage in the transformer coil. The ratio of the number of turns in the secondary to the number of turns in the primary equals the ratio of the output voltage from the secondary to the input voltage to the primary. b) Make a transformer with the large coil of wire. Connect the coil to the power strip. Loop a piece of wire through the center of the coil several times. (Caution: Do not let the ends of the wire you loop touch one another.) Attach the ends of the wire to a 4 bulb tray. 1) Note the brightness of the bulbs. 2) Wrap more turns of wire around the coil. What happens to the bulb brightness? The brightness of the bulbs increases. The more turns of wire, the larger the voltage and the brighter the bulbs. 3) What happens to the bulbs when you use fewer turns of wire? the bulbs become dim or may go out 4) How many turns of wire are in the large coil? Loop the wire through the coil several times and attach the ends of the wire to a digital multimeter. Set the meter to AC voltage and read the output voltage, V s. Assume that the input voltage, V p, is 120 volts. Calculate the number of turns of wire in the large coil. Solve equation 17.1 for N p by multiplying both sides of the equation by N s and canceling: N p = V p N s V s 5) Wrap double the number of loops of wire around the coil that you used in activity 4) above. How does the output voltage change? Make a prediction and then measure the voltage V s using a multimeter. Prediction: Measurement: 6) How does a current in one coil of wire in a transformer induce a current in a second coil of wire? The changing current through the input coil of wire creates a changing magnetic field around that coil. This changing magnetic field induces a current in the output coil. 7) How is a transformer like a simple machine? Simple machines trade force for distance or distance for force, but keep the power the same (except for some energy wasted due to friction). Transformers trade voltage for current or current for voltage, but keep the power the same (except for some waste as joule heating). c) Your instructor will demonstrate large transformers and the high voltage they can produce with a Jacob s ladder. What evidence do you see that a large voltage exists between the two ladders? 68

5 The big sparks that jump between the wires indicate a large voltage. Since dry air has high resistance, a large voltage (25,000 volts in this case) is needed to cause current to jump between the wires. Activity 17.7: Superconductivity and Induced Magnetism 1) Your instructor will give you a small magnet a piece of superconducting material attached to an inverted cup. Very carefully pour small amounts of liquid nitrogen on the superconductor to cool it. (Caution: Liquid nitrogen can quickly freeze your skin.) Hold the small magnet above the cold disc with tweezers and release the magnet. What happens? The magnet floats above the disc. 2) What force holds the small magnet above the superconducting disc? The repulsive magnetic force between the magnet and the magnetic field around the disc. 3) How does the magnet induce a current in the superconducting disc? When the magnet is moved into place above the disc, its motion creates a changing magnetic field that induces a current in the disc. The current flowing in the disc induces a magnetic field around the disc. The magnet floats because it is repelled by the magnetic field around the disc. 4) Why is a superconductor needed for this activity? When the disc is very cold, its resistance is zero, and current easily flows through it. The small amount of current induced by the magnet would die out if the material had any resistance. As long as the disc is kept very cold, the disc continues to be a superconductor and current flows, producing the magnetic field that supports the magnet. 69

Preview of Period 16: Motors and Generators

Preview of Period 16: Motors and Generators Preview of Period 16: Motors and Generators 16.1 DC Electric Motors What causes the rotor of a motor to spin? 16.2 Simple DC Motors What causes a changing magnetic field in the simple coil motor? 16.3

More information

PS-6.2 Explain the factors that determine potential and kinetic energy and the transformation of one to the other.

PS-6.2 Explain the factors that determine potential and kinetic energy and the transformation of one to the other. PS-6.1 Explain how the law of conservation of energy applies to the transformation of various forms of energy (including mechanical energy, electrical energy, chemical energy, light energy, sound energy,

More information

STUDY GUIDE: ELECTRICITY AND MAGNETISM

STUDY GUIDE: ELECTRICITY AND MAGNETISM 319 S. Naperville Road Wheaton, IL 60187 www.questionsgalore.net Phone: (630) 580-5735 E-Mail: info@questionsgalore.net Fax: (630) 580-5765 STUDY GUIDE: ELECTRICITY AND MAGNETISM An atom is made of three

More information

Motor Fundamentals. DC Motor

Motor Fundamentals. DC Motor Motor Fundamentals Before we can examine the function of a drive, we must understand the basic operation of the motor. It is used to convert the electrical energy, supplied by the controller, to mechanical

More information

DIRECT CURRENT GENERATORS

DIRECT CURRENT GENERATORS DIRECT CURRENT GENERATORS Revision 12:50 14 Nov 05 INTRODUCTION A generator is a machine that converts mechanical energy into electrical energy by using the principle of magnetic induction. This principle

More information

1. The diagram below represents magnetic lines of force within a region of space.

1. The diagram below represents magnetic lines of force within a region of space. 1. The diagram below represents magnetic lines of force within a region of space. 4. In which diagram below is the magnetic flux density at point P greatest? (1) (3) (2) (4) The magnetic field is strongest

More information

Magnetism. Magnetism. Magnetic Fields and Magnetic Domains. Magnetic Fields and Magnetic Domains. Creating and Destroying a Magnet

Magnetism. Magnetism. Magnetic Fields and Magnetic Domains. Magnetic Fields and Magnetic Domains. Creating and Destroying a Magnet Magnetism Magnetism Opposite poles attract and likes repel Opposite poles attract and likes repel Like electric force, but magnetic poles always come in pairs (North, South) Like electric force, but magnetic

More information

MEASURING INSTRUMENTS. By: Nafees Ahmed, Asstt, Prof, EE Deptt, DIT, Dehradun

MEASURING INSTRUMENTS. By: Nafees Ahmed, Asstt, Prof, EE Deptt, DIT, Dehradun MEASURING INSTRUMENTS By: Nafees Ahmed, Asstt, Prof, EE Deptt, DIT, Dehradun MEASURING INSTRUMENTS The device used for comparing the unknown quantity with the unit of measurement or standard quantity is

More information

Chapter 7. Magnetism and Electromagnetism ISU EE. C.Y. Lee

Chapter 7. Magnetism and Electromagnetism ISU EE. C.Y. Lee Chapter 7 Magnetism and Electromagnetism Objectives Explain the principles of the magnetic field Explain the principles of electromagnetism Describe the principle of operation for several types of electromagnetic

More information

Build A Simple Electric Motor (example #1)

Build A Simple Electric Motor (example #1) PHY115 Experiment 11 Build A Simple Electric Motor (example #1) MATERIAL This is the necessary equipment. Present any list of material in your written lab report. 1.5 V battery in series 1 ceramic magnet

More information

Chapter 2: Forms of Energy

Chapter 2: Forms of Energy Chapter 2: Forms of Energy Goals of Period 2 Section 2.1: To describe the forms of energy Section 2.2: To illustrate conversions from one form of energy to another Section 2.3: To define the efficiency

More information

DC GENERATOR THEORY. LIST the three conditions necessary to induce a voltage into a conductor.

DC GENERATOR THEORY. LIST the three conditions necessary to induce a voltage into a conductor. DC Generators DC generators are widely used to produce a DC voltage. The amount of voltage produced depends on a variety of factors. EO 1.5 LIST the three conditions necessary to induce a voltage into

More information

Inductance. Motors. Generators

Inductance. Motors. Generators Inductance Motors Generators Self-inductance Self-inductance occurs when the changing flux through a circuit arises from the circuit itself. As the current increases, the magnetic flux through a loop due

More information

Introduction to Electricity & Magnetism. Dr Lisa Jardine-Wright Cavendish Laboratory

Introduction to Electricity & Magnetism. Dr Lisa Jardine-Wright Cavendish Laboratory Introduction to Electricity & Magnetism Dr Lisa Jardine-Wright Cavendish Laboratory Examples of uses of electricity Christmas lights Cars Electronic devices Human body Electricity? Electricity is the presence

More information

Chapter 2: Forms of Energy

Chapter 2: Forms of Energy Chapter 2: Forms of Energy Goals of Period 2 Section 2.1: To describe the forms of energy Section 2.2: To illustrate conversions from one form of energy to another Section 2.3 To describe energy storage

More information

Lesson Plan for Introduction to Electricity

Lesson Plan for Introduction to Electricity Lesson Plan for Introduction to Electricity Last Updated: 01/16/2009 Updated by: Science For Kids Electricity Lesson 1 Table of Contents Lesson Summary... 3 Lesson Information... 4 Activity Descriptions

More information

Objectives. Capacitors 262 CHAPTER 5 ENERGY

Objectives. Capacitors 262 CHAPTER 5 ENERGY Objectives Describe a capacitor. Explain how a capacitor stores energy. Define capacitance. Calculate the electrical energy stored in a capacitor. Describe an inductor. Explain how an inductor stores energy.

More information

Inductors & Inductance. Electronic Components

Inductors & Inductance. Electronic Components Electronic Components Induction In 1824, Oersted discovered that current passing though a coil created a magnetic field capable of shifting a compass needle. Seven years later, Faraday and Henry discovered

More information

Section 9.5 Electric Motors

Section 9.5 Electric Motors Power connection Brush Commutator Bearing Electromagnet Armature haft Bearing Cooling fan ection 9.5 Electric Motors Electric motors spin the parts of many household machines. ometimes this rotary motion

More information

ElectroMagnetic Induction. AP Physics B

ElectroMagnetic Induction. AP Physics B ElectroMagnetic Induction AP Physics B What is E/M Induction? Electromagnetic Induction is the process of using magnetic fields to produce voltage, and in a complete circuit, a current. Michael Faraday

More information

Direct Current Motors

Direct Current Motors Direct Current Motors DC MOTORS The DC machine can operate as a generator and as a motor. Chap 5. Electrical Machines by Wildi, 6 e Lecturer: R. Alba-Flores Alfred State College Spring 2008 When a DC machine

More information

Chen. Vibration Motor. Application note

Chen. Vibration Motor. Application note Vibration Motor Application note Yangyi Chen April 4 th, 2013 1 Table of Contents Pages Executive Summary ---------------------------------------------------------------------------------------- 1 1. Table

More information

Induction Motor Theory

Induction Motor Theory PDHonline Course E176 (3 PDH) Induction Motor Theory Instructor: Jerry R. Bednarczyk, P.E. 2012 PDH Online PDH Center 5272 Meadow Estates Drive Fairfax, VA 22030-6658 Phone & Fax: 703-988-0088 www.pdhonline.org

More information

BUILDING A BASIC CIRCUIT

BUILDING A BASIC CIRCUIT Teacher Information BUILDING A BASIC CIRCUIT NSES9-12.2 Physical Science: Interactions of Energy and Matter Adaptations Some adaptations and modifications that may assist a student with visual and/or other

More information

Lab 8: DC generators: shunt, series, and compounded.

Lab 8: DC generators: shunt, series, and compounded. Lab 8: DC generators: shunt, series, and compounded. Objective: to study the properties of DC generators under no-load and full-load conditions; to learn how to connect these generators; to obtain their

More information

The purposes of this experiment are to test Faraday's Law qualitatively and to test Lenz's Law.

The purposes of this experiment are to test Faraday's Law qualitatively and to test Lenz's Law. 260 17-1 I. THEORY EXPERIMENT 17 QUALITATIVE STUDY OF INDUCED EMF Along the extended central axis of a bar magnet, the magnetic field vector B r, on the side nearer the North pole, points away from this

More information

Understanding the Alternator

Understanding the Alternator http://www.autoshop101.com THIS AUTOMOTIVE SERIES ON ALTERNATORS HAS BEEN DEVELOPED BY KEVIN R. SULLIVAN PROFESSOR OF AUTOMOTIVE TECHNOLOGY AT SKYLINE COLLEGE SAN BRUNO, CALIFORNIA ALL RIGHTS RESERVED

More information

PHYS 222 Spring 2012 Final Exam. Closed books, notes, etc. No electronic device except a calculator.

PHYS 222 Spring 2012 Final Exam. Closed books, notes, etc. No electronic device except a calculator. PHYS 222 Spring 2012 Final Exam Closed books, notes, etc. No electronic device except a calculator. NAME: (all questions with equal weight) 1. If the distance between two point charges is tripled, the

More information

Magnetism Basics. Magnetic Domains: atomic regions of aligned magnetic poles Random Alignment Ferromagnetic Alignment. Net Effect = Zero!

Magnetism Basics. Magnetic Domains: atomic regions of aligned magnetic poles Random Alignment Ferromagnetic Alignment. Net Effect = Zero! Magnetism Basics Source: electric currents Magnetic Domains: atomic regions of aligned magnetic poles Random Alignment Ferromagnetic Alignment Net Effect = Zero! Net Effect = Additive! Bipolar: all magnets

More information

AC generator theory. Resources and methods for learning about these subjects (list a few here, in preparation for your research):

AC generator theory. Resources and methods for learning about these subjects (list a few here, in preparation for your research): AC generator theory This worksheet and all related files are licensed under the Creative Commons Attribution License, version 1.0. To view a copy of this license, visit http://creativecommons.org/licenses/by/1.0/,

More information

Odyssey of the Mind Technology Fair. Simple Electronics

Odyssey of the Mind Technology Fair. Simple Electronics Simple Electronics 1. Terms volts, amps, ohms, watts, positive, negative, AC, DC 2. Matching voltages a. Series vs. parallel 3. Battery capacity 4. Simple electronic circuit light bulb 5. Chose the right

More information

Equipment: Power Supply, DAI, Universal motor (8254), Electrodynamometer (8960), timing belt.

Equipment: Power Supply, DAI, Universal motor (8254), Electrodynamometer (8960), timing belt. Lab 12: The universal motor. Objective: to examine the construction of the universal motor; to determine its no-load and full-load characteristics while operating on AC; to determine its no-load and full-load

More information

This topic explores the key concepts of magnetism as they relate to: the phenomenon of magnetism magnetic forces and fields a theory of magnetism.

This topic explores the key concepts of magnetism as they relate to: the phenomenon of magnetism magnetic forces and fields a theory of magnetism. Magnetism Introduction This topic explores the key concepts of magnetism as they relate to: the phenomenon of magnetism magnetic forces and fields a theory of magnetism. Key concepts of magnetism The activities

More information

Chapter 22: Electric motors and electromagnetic induction

Chapter 22: Electric motors and electromagnetic induction Chapter 22: Electric motors and electromagnetic induction The motor effect movement from electricity When a current is passed through a wire placed in a magnetic field a force is produced which acts on

More information

Service and Maintenance. SEW-EURODRIVE Driving the world

Service and Maintenance. SEW-EURODRIVE Driving the world SEW Brakes Service and Maintenance 2 Objectives Upon completion of this session, you will be able to do the following: - Identify the components of an SEW brakemotor - Explain the operation of the SEW

More information

Simple Analysis for Brushless DC Motors Case Study: Razor Scooter Wheel Motor

Simple Analysis for Brushless DC Motors Case Study: Razor Scooter Wheel Motor Simple Analysis for Brushless DC Motors Case Study: Razor Scooter Wheel Motor At first glance, a brushless direct-current (BLDC) motor might seem more complicated than a permanent magnet brushed DC motor,

More information

Basics of Electricity

Basics of Electricity Basics of Electricity Generator Theory PJM State & Member Training Dept. PJM 2014 8/6/2013 Objectives The student will be able to: Describe the process of electromagnetic induction Identify the major components

More information

Direction of Induced Current

Direction of Induced Current Direction of Induced Current Bar magnet moves through coil Current induced in coil A S N v Reverse pole Induced current changes sign B N S v v Coil moves past fixed bar magnet Current induced in coil as

More information

Module 22: Inductance and Magnetic Field Energy

Module 22: Inductance and Magnetic Field Energy Module 22: Inductance and Magnetic Field Energy 1 Module 22: Outline Self Inductance Energy in Inductors Circuits with Inductors: RL Circuit 2 Faraday s Law of Induction dφ = B dt Changing magnetic flux

More information

Lab 37: Magnetic Field ; Magnets - Drawing magnetic fields - Magnetic poles - Forces between magnets

Lab 37: Magnetic Field ; Magnets - Drawing magnetic fields - Magnetic poles - Forces between magnets Lab 37: Magnetic Field ; Magnets - Drawing magnetic fields - Magnetic poles - Forces between magnets 1) The following simple magnet configurations were shown to you in class - draw the magnetic field lines

More information

Induced voltages and Inductance Faraday s Law

Induced voltages and Inductance Faraday s Law Induced voltages and Inductance Faraday s Law concept #1, 4, 5, 8, 13 Problem # 1, 3, 4, 5, 6, 9, 10, 13, 15, 24, 23, 25, 31, 32a, 34, 37, 41, 43, 51, 61 Last chapter we saw that a current produces a magnetic

More information

UNIT 3 AUTOMOBILE ELECTRICAL SYSTEMS

UNIT 3 AUTOMOBILE ELECTRICAL SYSTEMS UNIT 3 AUTOMOBILE ELECTRICAL SYSTEMS Automobile Electrical Structure 3.1 Introduction Objectives 3.2 Ignition System 3.3 Requirement of an Ignition System 3.4 Types of Ignition 3.4.1 Battery or Coil Ignition

More information

Components. Transformers

Components. Transformers Components Transformers How does a transformer work? A transformer is based on a simple fact about electricity: when a fluctuating electric current flows through a wire, it generates a magnetic field (an

More information

2. A conductor of length 2m moves at 4m/s at 30 to a uniform magnetic field of 0.1T. Which one of the following gives the e.m.f. generated?

2. A conductor of length 2m moves at 4m/s at 30 to a uniform magnetic field of 0.1T. Which one of the following gives the e.m.f. generated? Extra Questions - 2 1. A straight length of wire moves through a uniform magnetic field. The e.m.f. produced across the ends of the wire will be maximum if it moves: a) along the lines of magnetic flux

More information

Force on Moving Charges in a Magnetic Field

Force on Moving Charges in a Magnetic Field [ Assignment View ] [ Eðlisfræði 2, vor 2007 27. Magnetic Field and Magnetic Forces Assignment is due at 2:00am on Wednesday, February 28, 2007 Credit for problems submitted late will decrease to 0% after

More information

Think About This How do the generators located inside the dam convert the kinetic and potential energy of the water into electric energy?

Think About This How do the generators located inside the dam convert the kinetic and potential energy of the water into electric energy? What You ll Learn You will describe how changing magnetic fields can generate electric potential differences. You will apply this phenomenon to the construction of generators and transformers. Why It s

More information

Energy Transfer in a Flash-Light. (Teacher Copy)

Energy Transfer in a Flash-Light. (Teacher Copy) Energy Transfer in a Flash-Light (Teacher Copy) Florida Sunshine State Standards Benchmark: SC.B. 1.3.1 AA The student identifies forms of energy and explains that they can be measured and compared. (Also

More information

Magnetism. d. gives the direction of the force on a charge moving in a magnetic field. b. results in negative charges moving. clockwise.

Magnetism. d. gives the direction of the force on a charge moving in a magnetic field. b. results in negative charges moving. clockwise. Magnetism 1. An electron which moves with a speed of 3.0 10 4 m/s parallel to a uniform magnetic field of 0.40 T experiences a force of what magnitude? (e = 1.6 10 19 C) a. 4.8 10 14 N c. 2.2 10 24 N b.

More information

SECTION 4 ELECTRIC MOTORS UNIT 17: TYPES OF ELECTRIC MOTORS

SECTION 4 ELECTRIC MOTORS UNIT 17: TYPES OF ELECTRIC MOTORS SECTION 4 ELECTRIC MOTORS UNIT 17: TYPES OF ELECTRIC MOTORS UNIT OBJECTIVES After studying this unit, the reader should be able to Describe the different types of open single-phase motors used to drive

More information

The DC Motor/Generator Commutation Mystery. Commutation and Brushes. DC Machine Basics

The DC Motor/Generator Commutation Mystery. Commutation and Brushes. DC Machine Basics The DC Motor/Generator Commutation Mystery One small, yet vital piece of the DC electric motor puzzle is the carbon brush. Using the correct carbon brush is a key component for outstanding motor life,

More information

ELECTRICAL FUNDAMENTALS

ELECTRICAL FUNDAMENTALS General Electricity is a form of energy called electrical energy. It is sometimes called an "unseen" force because the energy itself cannot be seen, heard, touched, or smelled. However, the effects of

More information

ELECTRODYNAMICS 05 AUGUST 2014

ELECTRODYNAMICS 05 AUGUST 2014 ELECTRODYNAMICS 05 AUGUST 2014 In this lesson we: Lesson Description Discuss the motor effect Discuss how generators and motors work. Summary The Motor Effect In order to realise the motor effect, the

More information

Equipment: Power Supply, DAI, Transformer (8341), Variable resistance (8311), Variable inductance (8321), Variable capacitance (8331)

Equipment: Power Supply, DAI, Transformer (8341), Variable resistance (8311), Variable inductance (8321), Variable capacitance (8331) Lab 5: Single-phase transformer operations. Objective: to examine the design of single-phase transformers; to study the voltage and current ratios of transformers; to study the voltage regulation of the

More information

DC generator theory. Resources and methods for learning about these subjects (list a few here, in preparation for your research):

DC generator theory. Resources and methods for learning about these subjects (list a few here, in preparation for your research): DC generator theory This worksheet and all related files are licensed under the Creative Commons Attribution License, version 1.0. To view a copy of this license, visit http://creativecommons.org/licenses/by/1.0/,

More information

Electrical Fundamentals Module 3: Parallel Circuits

Electrical Fundamentals Module 3: Parallel Circuits Electrical Fundamentals Module 3: Parallel Circuits PREPARED BY IAT Curriculum Unit August 2008 Institute of Applied Technology, 2008 ATE310- Electrical Fundamentals 2 Module 3 Parallel Circuits Module

More information

ENERGY TRANSFER SYSTEMS AND THEIR DYNAMIC ANALYSIS

ENERGY TRANSFER SYSTEMS AND THEIR DYNAMIC ANALYSIS ENERGY TRANSFER SYSTEMS AND THEIR DYNAMIC ANALYSIS Many mechanical energy systems are devoted to transfer of energy between two points: the source or prime mover (input) and the load (output). For chemical

More information

I = V/r P = VI. I = P/V = 100 W / 6 V = 16.66 amps. What would happen if you use a 12-volt battery and a 12-volt light bulb to get 100 watts of power?

I = V/r P = VI. I = P/V = 100 W / 6 V = 16.66 amps. What would happen if you use a 12-volt battery and a 12-volt light bulb to get 100 watts of power? Volts, Amps and Ohms Measuring Electricity The three most basic units in electricity are voltage (V), current (I) and resistance (r). Voltage is measured in volts, current is measured in amps and resistance

More information

Sources of electricity

Sources of electricity Sources of electricity This worksheet and all related files are licensed under the Creative Commons Attribution License, version 1.0. To view a copy of this license, visit http://creativecommons.org/licenses/by/1.0/,

More information

Sources of electricity

Sources of electricity Sources of electricity This worksheet and all related files are licensed under the Creative Commons Attribution License, version 1.0. To view a copy of this license, visit http://creativecommons.org/licenses/by/1.0/,

More information

Linear DC Motors. 15.1 Magnetic Flux. 15.1.1 Permanent Bar Magnets

Linear DC Motors. 15.1 Magnetic Flux. 15.1.1 Permanent Bar Magnets Linear DC Motors The purpose of this supplement is to present the basic material needed to understand the operation of simple DC motors. This is intended to be used as the reference material for the linear

More information

Georgia Performance Standards Framework for Physical Science 8 th Grade. Powering Satellites

Georgia Performance Standards Framework for Physical Science 8 th Grade. Powering Satellites The following instructional plan is part of a GaDOE collection of Unit Frameworks, Performance Tasks, examples of Student Work, and Teacher Commentary. Many more GaDOE approved instructional plans are

More information

Electrical Charge: a type of energy that comes from the flow of charged particles; it allows electrical devices to function.

Electrical Charge: a type of energy that comes from the flow of charged particles; it allows electrical devices to function. Unit E: Electrical Applications Chapter 11: Electrical Energy 11.1: Generating Electricity pg. 420 Key Concepts: 1. Electrical energy is generated using a variety of technologies. 2. Electrical energy

More information

Wires & Connections Component Circuit Symbol Function of Component. Power Supplies Component Circuit Symbol Function of Component

Wires & Connections Component Circuit Symbol Function of Component. Power Supplies Component Circuit Symbol Function of Component Lista Dei Simboli Dei Circuiti Per i Componenti Elettronici Wires & Connections Wire Wires joined Wires not joined To pass current very easily from one part of a circuit to another. A 'blob' should be

More information

BRIEF DESCRIPTION OF DRAWINGS

BRIEF DESCRIPTION OF DRAWINGS A Practical Guide to Free Energy Devices Part PatD19: Last updated: 2nd September 2006 Author: Patrick J. Kelly This patent covers a device which is claimed to have a greater output power than the input

More information

Application Information

Application Information Moog Components Group manufactures a comprehensive line of brush-type and brushless motors, as well as brushless controllers. The purpose of this document is to provide a guide for the selection and application

More information

MAGICAL MAGNETS MAKE ELECTRICITY GRADES

MAGICAL MAGNETS MAKE ELECTRICITY GRADES MAGICAL MAGNETS MAKE ELECTRICITY GRADES 3-5 MAGICAL MAGNETS SNC - Plant Farley LESSON PLAN MAKE ELECTRICITY Lesson Title: Lesson Description: Students conduct experiments using magnets to gain an understanding

More information

Name Partners Date. Energy Diagrams I

Name Partners Date. Energy Diagrams I Name Partners Date Visual Quantum Mechanics The Next Generation Energy Diagrams I Goal Changes in energy are a good way to describe an object s motion. Here you will construct energy diagrams for a toy

More information

UNIT D ELECTRICAL PRINCIPLES & TECHNOLOGIES. Science 9

UNIT D ELECTRICAL PRINCIPLES & TECHNOLOGIES. Science 9 UNIT D ELECTRICAL PRINCIPLES & TECHNOLOGIES Science 9 LEARNING GOALS Investigate and interpret devices that convert various forms of energy Describe technologies for the transfer and control of electrical

More information

13 ELECTRIC MOTORS. 13.1 Basic Relations

13 ELECTRIC MOTORS. 13.1 Basic Relations 13 ELECTRIC MOTORS Modern underwater vehicles and surface vessels are making increased use of electrical actuators, for all range of tasks including weaponry, control surfaces, and main propulsion. This

More information

Section B: Electricity

Section B: Electricity Section B: Electricity We use mains electricity, supplied by power stations, for all kinds of appliances in our homes, so it is very important to know how to use it safely. In this chapter you will learn

More information

Electric Motor. Your Activity Build a simple electric motor. Material. Create. Science Topics. What s going on? 2 Jumbo Safety Pins (or Paper Clips)

Electric Motor. Your Activity Build a simple electric motor. Material. Create. Science Topics. What s going on? 2 Jumbo Safety Pins (or Paper Clips) Electric Motor Your Activity Build a simple electric motor Material D-Cell Battery Coil made out of magnet wire 2 Jumbo Safety Pins (or Paper Clips) Scissors (or sand paper) 1 Rubber Band Ceramic Magnet

More information

Transformer Calculations

Transformer Calculations Transformer Calculations Transformers Transformers are one of the most basic yet practical devices used today. No matter where you are there is always a transformer nearby. They are used throughout alternating-current

More information

The DC Motor. Physics 1051 Laboratory #5 The DC Motor

The DC Motor. Physics 1051 Laboratory #5 The DC Motor The DC Motor Physics 1051 Laboratory #5 The DC Motor Contents Part I: Objective Part II: Introduction Magnetic Force Right Hand Rule Force on a Loop Magnetic Dipole Moment Torque Part II: Predictions Force

More information

DHANALAKSHMI COLLEGE OF ENGINEERING DEPARTMENT OF ELECTRICAL AND ELECTRONICS ENGINEERING EE2302 - ELECTRICAL MACHINES II UNIT-I SYNCHRONOUS GENERATOR

DHANALAKSHMI COLLEGE OF ENGINEERING DEPARTMENT OF ELECTRICAL AND ELECTRONICS ENGINEERING EE2302 - ELECTRICAL MACHINES II UNIT-I SYNCHRONOUS GENERATOR 1 DHANALAKSHMI COLLEGE OF ENGINEERING DEPARTMENT OF ELECTRICAL AND ELECTRONICS ENGINEERING Constructional details Types of rotors EE2302 - ELECTRICAL MACHINES II UNIT-I SYNCHRONOUS GENERATOR PART A 1.

More information

Name: Partners: Period: Coaster Option: 1. In the space below, make a sketch of your roller coaster.

Name: Partners: Period: Coaster Option: 1. In the space below, make a sketch of your roller coaster. 1. In the space below, make a sketch of your roller coaster. 2. On your sketch, label different areas of acceleration. Put a next to an area of negative acceleration, a + next to an area of positive acceleration,

More information

AP1 Electricity. 1. A student wearing shoes stands on a tile floor. The students shoes do not fall into the tile floor due to

AP1 Electricity. 1. A student wearing shoes stands on a tile floor. The students shoes do not fall into the tile floor due to 1. A student wearing shoes stands on a tile floor. The students shoes do not fall into the tile floor due to (A) a force of repulsion between the shoes and the floor due to macroscopic gravitational forces.

More information

SYNCHRONOUS MACHINES

SYNCHRONOUS MACHINES SYNCHRONOUS MACHINES The geometry of a synchronous machine is quite similar to that of the induction machine. The stator core and windings of a three-phase synchronous machine are practically identical

More information

Aircraft Electrical System

Aircraft Electrical System Chapter 9 Aircraft Electrical System Introduction The satisfactory performance of any modern aircraft depends to a very great degree on the continuing reliability of electrical systems and subsystems.

More information

The Simple DC Motor: A Teacher s Guide

The Simple DC Motor: A Teacher s Guide The Simple DC Motor: A Teacher s Guide Kristy Beauvais Research Experience for Teachers Center for Materails Science and Engineering Massachusetts Institute of Technology August 2003 Motor Design: Steven

More information

Theory of Heating by Induction

Theory of Heating by Induction CHAPTER 2 Theory of Heating by Induction INDUCTION HEATING was first noted when it was found that heat was produced in transformer and motor windings, as mentioned in the Chapter Heat Treating of Metal

More information

Problem 1 (25 points)

Problem 1 (25 points) MASSACHUSETTS INSTITUTE OF TECHNOLOGY Department of Physics 8.02 Spring 2012 Exam Three Solutions Problem 1 (25 points) Question 1 (5 points) Consider two circular rings of radius R, each perpendicular

More information

MULTIPLE CHOICE. Choose the one alternative that best completes the statement or answers the question.

MULTIPLE CHOICE. Choose the one alternative that best completes the statement or answers the question. MULTIPLE CHOICE. Choose the one alternative that best completes the statement or answers the question. 1) If the voltage at a point in space is zero, then the electric field must be A) zero. B) positive.

More information

Edmund Li. Where is defined as the mutual inductance between and and has the SI units of Henries (H).

Edmund Li. Where is defined as the mutual inductance between and and has the SI units of Henries (H). INDUCTANCE MUTUAL INDUCTANCE If we consider two neighbouring closed loops and with bounding surfaces respectively then a current through will create a magnetic field which will link with as the flux passes

More information

THE LUCAS C40 DYNAMO & ITS ARMATURE.

THE LUCAS C40 DYNAMO & ITS ARMATURE. THE LUCAS C40 DYNAMO & ITS ARMATURE. H. Holden, March 2011. The Dynamo as a DC generating machine was used extensively in the pre- Alternator era, from the early 1900 s up to the late 1960 s and early

More information

Preview of Period 2: Forms of Energy

Preview of Period 2: Forms of Energy Preview of Period 2: Forms of Energy 2.1 Forms of Energy How are forms of energy defined? 2.2 Energy Conversions What happens when energy is converted from one form into another form? 2.3 Efficiency of

More information

People s Physics Book

People s Physics Book The Big Ideas: The name electric current is given to the phenomenon that occurs when an electric field moves down a wire at close to the speed of light. Voltage is the electrical energy density (energy

More information

Principles and Working of DC and AC machines

Principles and Working of DC and AC machines BITS Pilani Dubai Campus Principles and Working of DC and AC machines Dr Jagadish Nayak Constructional features BITS Pilani Dubai Campus DC Generator A generator consists of a stationary portion called

More information

6/2016 E&M forces-1/8 ELECTRIC AND MAGNETIC FORCES. PURPOSE: To study the deflection of a beam of electrons by electric and magnetic fields.

6/2016 E&M forces-1/8 ELECTRIC AND MAGNETIC FORCES. PURPOSE: To study the deflection of a beam of electrons by electric and magnetic fields. 6/016 E&M forces-1/8 ELECTRIC AND MAGNETIC FORCES PURPOSE: To study the deflection of a beam of electrons by electric and magnetic fields. APPARATUS: Electron beam tube, stand with coils, power supply,

More information

Experiment #4, Ohmic Heat

Experiment #4, Ohmic Heat Experiment #4, Ohmic Heat 1 Purpose Physics 18 - Fall 013 - Experiment #4 1 1. To demonstrate the conversion of the electric energy into heat.. To demonstrate that the rate of heat generation in an electrical

More information

Forms of Energy: Multiple Transformations : Teacher Notes

Forms of Energy: Multiple Transformations : Teacher Notes Forms of Energy: Multiple Transformations : Teacher Notes Introduction The focus of the investigation is to further define energy and realize that chains of energy transformations can occur. The VoltageCurrent,

More information

Ampere's Law. Introduction. times the current enclosed in that loop: Ampere's Law states that the line integral of B and dl over a closed path is 0

Ampere's Law. Introduction. times the current enclosed in that loop: Ampere's Law states that the line integral of B and dl over a closed path is 0 1 Ampere's Law Purpose: To investigate Ampere's Law by measuring how magnetic field varies over a closed path; to examine how magnetic field depends upon current. Apparatus: Solenoid and path integral

More information

How to Turn an AC Induction Motor Into a DC Motor (A Matter of Perspective) Steve Bowling Application Segments Engineer Microchip Technology, Inc.

How to Turn an AC Induction Motor Into a DC Motor (A Matter of Perspective) Steve Bowling Application Segments Engineer Microchip Technology, Inc. 1 How to Turn an AC Induction Motor Into a DC Motor (A Matter of Perspective) Steve Bowling Application Segments Engineer Microchip Technology, Inc. The territory of high-performance motor control has

More information

Electromagnetic Induction Experiment

Electromagnetic Induction Experiment In this experiment, the activity will be based on a Phet simulation called Faraday s Electromagnetic Lab, created by a group at the University of Colorado at Boulder. This group has a number of good simulations

More information

Motors and Generators

Motors and Generators Motors and Generators Electro-mechanical devices: convert electrical energy to mechanical motion/work and vice versa Operate on the coupling between currentcarrying conductors and magnetic fields Governed

More information

What is Energy? What is the relationship between energy and work?

What is Energy? What is the relationship between energy and work? What is Energy? What is the relationship between energy and work? Compare kinetic and potential energy What are the different types of energy? What is energy? Energy is the ability to do work. Great, but

More information

Chapter 30 - Magnetic Fields and Torque. A PowerPoint Presentation by Paul E. Tippens, Professor of Physics Southern Polytechnic State University

Chapter 30 - Magnetic Fields and Torque. A PowerPoint Presentation by Paul E. Tippens, Professor of Physics Southern Polytechnic State University Chapter 30 - Magnetic Fields and Torque A PowerPoint Presentation by Paul E. Tippens, Professor of Physics Southern Polytechnic State University 2007 Objectives: After completing this module, you should

More information

101 BASICS SERIES LEARNING MODULE 2: FUNDAMENTALS OF ELECTRICITY. Cutler-Hammer

101 BASICS SERIES LEARNING MODULE 2: FUNDAMENTALS OF ELECTRICITY. Cutler-Hammer 101 BASICS SERIES LEARNING MODULE 2: FUNDAMENTALS OF ELECTRICITY Cutler-Hammer WELCOME Welcome to Module 2, Fundamentals of Electricity. This module will cover the fundamentals of electricity in a practical

More information

Solution Derivations for Capa #11

Solution Derivations for Capa #11 Solution Derivations for Capa #11 Caution: The symbol E is used interchangeably for energy and EMF. 1) DATA: V b = 5.0 V, = 155 Ω, L = 8.400 10 2 H. In the diagram above, what is the voltage across the

More information

Objectives 200 CHAPTER 4 RESISTANCE

Objectives 200 CHAPTER 4 RESISTANCE Objectives Explain the differences among conductors, insulators, and semiconductors. Define electrical resistance. Solve problems using resistance, voltage, and current. Describe a material that obeys

More information