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Electromagnetic Induction
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Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Jan 18, 2016

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Page 1: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Electromagnetic Induction

Page 2: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Electric Fields• Electric fields are created bycharges

• A charge in an electric field always has a force on it

+force

Page 3: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Magnetic FieldMagnetic fields are created by moving charges

This can happen inmagnets or current carrying wires.

Page 4: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Magnetic Fields only affect moving charges

+ +

velocity

FORCE is… ZERO FORCE is…

towards you

Page 5: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.
Page 6: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

strong field

weak field

Page 7: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

strong field

weak field

Page 8: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

NS

electron beam

electron gun

x

y

z

Page 9: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

What direction is the magnetic field?

Page 10: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

NS

wire

Wire's velocity

x

y

z

Page 11: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Magnetic Flux

• Magnetic flux is the amount of magnetic field.

• It depends on the field strength and the area

Page 12: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.
Page 13: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

NS

There is a large flux through this loop

And a smaller flux through this loop

Even smaller flux through this loop

Page 14: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.
Page 15: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Which ring has the biggest magnetic flux in it?

Which ring has the strongest magnetic field strength in it?

Magnetic field lines

Page 16: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Which ring has the largest magnetic flux in it?

Page 17: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Magnetic = Magnetic X Area

Flux Field Strength

Webers = Tesla x m2

B A

Page 18: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

• Magnetic field strength is also called flux density.

BA

B A

Page 19: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Which ring has the biggest magnetic flux ?

Page 20: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Area is same

Field strength is same

Which ring has the biggest magnetic flux ?

Page 21: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

• Year 12:A wire cutting across a magnetic field has an

induced EMF (or voltage)

Faraday’s LawWhen the magnetic flux through a loop

changes, there is an induced EMF (voltage)

The faster the change, the bigger the EMF

t

Page 22: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Changing the Flux

• You can change the flux by changing the field strength or the area perpendicular

B A

Page 23: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

NS

Changing the field strength

Page 24: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

NS

Changing the area

Page 25: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

NS

Changing the area perpendicular

Page 26: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Flux Change in a Generator

Page 27: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

• faraday-mx.swf

Page 28: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

• So for many loops,

t

becomes,

N

t

Page 29: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Changing the actual area Changing the angle

Changing the Area

Page 30: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Flux change in a moving loop

flux

time

Page 31: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

voltage

time

Induced EMF in a moving loop

t

Page 32: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

voltage

time

time

flux

Page 33: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Close switch… current increases …field increasesFlux change through 2nd coil

Induced EMF in 2nd coil

Creates current in 2nd coil

Creates magnetic field that opposes the cause.

N N

Page 34: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Lenz’s Law Electron flow

Force on roller

1: electrons in roller are moving 2: causing them to be pushed 3: electrons in roller are now flowing 4: causing them (and roller) to be pushed

Page 35: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

• Faraday: A flux change causes an induced EMF (voltage)

• Lenz’s Law states that the induced voltage opposes the flux change that caused it.

t

Page 36: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

NFalling magnet creates a flux change in the pipe.

This creates induced EMF

This creates induced current

This creates induced magnetic field

magnetic field opposes flux change

Page 37: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

So how does your electric toothbrush charge up?

Page 38: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Increasing current in Primary

Causes flux change in core Causes flux change in Sec Causes induced EMF in Sec Causes induced current in Sec

This is called Mutual Induction

P

S

Page 39: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

AC Generator

• http://www.walter-fendt.de/ph11e/generator_e.htm

Page 40: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

B

A

C

D

VoltageAngle

FluxAngle

Coil position (End on)

Page 41: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

VoltageAngle

FluxAngle

Page 42: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

• ..\faraday.jar

Page 43: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Transformers

Page 44: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

• A transformer is used to increase or decrease the voltage.

• Mains voltage in NZ is 240 V AC.

• Your cellphone charger needs about 4.0 V. It uses a transformer to reduce the voltage.

Page 45: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Increasing current in P

Causes flux change in P

Causes flux change in S

Causes induced EMF in S Causes induced current in S

This is called Mutual Induction

P S

Page 46: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

• transformer.jar

Page 47: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Primary currentMagnetic flux in coreInduced EMF in Secondary

Page 48: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

The AC current in the primary coil is changing sinusoidaly

So the magnetic flux is changing sinusoidally

So the induced EMF is sinusoidal

Page 49: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

• The output voltage (Vs) depends on:

the input voltagethe ratio of turns

orp

ss

p

VN

NV

s

p p

sN

N V

V

VsVpprimary secondary

Iron core

Np Ns

Page 50: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Mutual Induction

• This is when a changing current in one coil induces a voltage (EMF) in a second coil.

Page 51: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Small Mutual Inductance between coils

Page 52: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Iron cores produce stronger, more concentrated magnetic field

larger Mutual Inductance

Page 53: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Toroidal core produces even larger

Mutual Inductance

Page 54: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

M is the mutual inductance, measured in Henries (H)

EMF in secondary coil PMI

t

Page 55: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

• Using transformers to save energy

Page 56: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

You’ve seen these around the streets. What do they do?

Page 57: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Transformers are very important for power transmission.

• The power transmitted along wires is given by:

Power = V x I• The power wasted as heat in the

wire is given by :

Power = I2 x R

Page 58: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

• To minimise the power lost as heat, the wire’s resistance and the current must be a small as possible.

Power lost = I2 x R

• To transmit the same power, the voltage must be very large.

Power transmitted = V x I

Page 59: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Power station generators produce electricity at about 4000 V

Transformers increase it to about 400 000 V. (and reduce the

current)

Page 60: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Transmission lines then carry the electricity at 400 000 V

Page 61: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Transformers in Auckland reduce the voltage to about 4000 V

Page 62: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

This is then reduced to 240 V in local transformers around the

streets

Page 63: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

4000 V400 000 V

4000 V

240 V

Page 64: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Your cellphone charger changes the 240 V current to about 4 V

Page 66: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Inductors

An inductor is a wire coil usually wrapped around an iron core

Page 67: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Self Inductance

A coil can induce a voltage in itself !!!??

A

Page 68: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Predict what happens when the switch closes.

What does happen when the switch closes?

A

Page 69: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

What happens when the switch opens?

A

Page 70: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

An inductor is designed to oppose a changing current

This is because it can induce an EMF in itself. This is called Self

Inductance.

Page 71: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Increasing current

Causes increasing magnetic fieldThere is a flux change through coilCauses induced EMF

Direction of EMF opposes current change

Increasing current

Induced EMF

Current Increasing

Page 72: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Self Inductance

• A coil can induce a voltage in itself.

• L is called the self inductance

EMF in coil PI

tL

Self Inductance (L) is measured in Henries (H)

Page 73: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

• This induced EMF (or back EMF) opposes the increase in current, so the current rises…

SLOWLY

This is called Self Inductance

(The coil induces an EMF in itself)

Page 74: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

current

timeClose switch

I = V/R

R is the ohmic resistance of the inductor L

R

Page 75: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

current

Close switch

Back EMF

Close switch

Recall: EMF in coil PI

tL

Page 76: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

timeClose switch

Imax

L

R

Recall the meaning of time constant for a capacitor and resistor?

It means the same for an inductor and resistor.

0.63 Imax

Page 77: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

L

R

Larger inductance, longer time to reach maximum current

Larger resistance, smaller current so shorter time to reach maximum current

Page 78: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

current

Close switch

How would the graph change if:

Inductor had higher inductance?

Inductor had higher resistance (careful)

Page 79: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

Decreasing current

Causes decreasing magnetic fieldThis is a flux change

Causes induced EMF

Direction of EMF opposes current change.

Current Decreasing

Page 80: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

• This induced EMF (or back EMF) opposes the decrease in current, so the current drops…

SLOWLY

This is called Self Inductance

Page 81: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

When the switch opens, the current drops to zero rapidly

This causes a large flux change

This induces a very large EMF

This causes a spark across the switch

Page 82: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.
Page 84: Electromagnetic Induction. Electric Fields Electric fields are created bycharges A charge in an electric field always has a force on it + force.

http://www.walter-fendt.de/ph11e/osccirc.htm

Extension: LC oscillation