Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge:...

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ng charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of thin wire Current: 0 4 =10 7 T∙m A

Transcript of Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge:...

Page 1: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Moving charge produces a curly magnetic field

B units: T (Tesla) = kg s-2A-1

Single Charge:

Biot-Savart Law

The Biot-Savart law for a short length of thin wire

Current:

𝜇0

4𝜋=10−7 T ∙ m

A

Page 2: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Four-step approach:

1. Cut up the current distribution into pieces and draw B

2. Write an expression for B due to one piece

3. Add up the contributions of all the pieces

4. Check the result

Magnetic Field of Current Distributions

Page 3: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Step 1:Cut up the current distribution into pieces and draw B.

Origin: center of wire

Vector r:

Magnitude of r:

A Long Straight Wire

Unit vector:

Page 4: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Step 2:Write an expression for B due to one piece.

:

B field due to one piece:

A Long Straight Wire

Page 5: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

need to calculate only z component

A Long Straight Wire

Page 6: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Step 3:Add up the contribution of all the pieces.

A Long Straight Wire

Page 7: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Special case: x<<L

A Long Straight Wire

What is the meaning of “x”?

Page 8: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Step 4: Check results

direction

far away: r>>L

units:

A Long Straight Wire

Page 9: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

For Infinite Wire

Semi-infinite Straight Wire

0

− ∞

− ∞

+∞

0

+∞

𝐵𝑠𝑒𝑚𝑖=𝜇0

4 𝜋𝐼𝑥

𝐵∞=𝜇0

4 𝜋2 𝐼𝑥

For Semi-Infinite Wire

Even Function: Half the integral …

Page 10: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Off-axis for Long Straight Wire

y

x

a Angle between∆ ��

𝑟∆ ��=

𝜇0

4𝜋1𝑟2 ∆ 𝑦 sin𝛼 (− �� )

Rewrite in terms of

See Quest Course Resources for details (offaxisline.pdf)

Page 11: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Right-hand Rule for Wire

Conventional Current Direction

Page 12: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

QuestionCurrent carrying wires below lie in X-Y plane.

Page 13: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Question

𝐵𝑤𝑖𝑟𝑒=𝐵 h𝑒𝑎𝑟𝑡 tan (𝜃)¿ (2×1 0−5 T) tan (12° )T

Page 14: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Step 1:Cut up the distribution into pieces

Make use of symmetry!

Need to consider only Bz due to one dl

Magnetic Field of a Wire Loop

Page 15: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Step 2: B due to one piece

Origin: center of loop

Vector r:

Magnitude of r:

Unit vector:

l:

Magnetic field due to one piece:

Magnetic Field of a Wire Loop

Page 16: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Step 2: B due to one piece

need only z component:

Magnetic Field of a Wire Loop

Page 17: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Step 3: Sum the contributions of all pieces

Magnetic field of a loop along its axis:

Magnetic Field of a Wire Loop

Page 18: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Step 4: Check the results

units:

direction:

Magnetic Field of a Wire Loop

Check several pieces with the right hand rule

Note: We’ve not calculated or shown the “rest” of the magnetic field

Page 19: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Using general form (z=0) :

Special case: center of the loopMagnetic Field of a Wire Loop

Page 20: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

for z>>R:

Magnetic Field of a Wire LoopSpecial case: far from the loop

The magnetic field of a circular loop falls off like 1/z3

Page 21: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

For whole loop

Special case: at center of the semicircle

Magnetic Field of a Semicircle

∫0

𝜋

¿ 12∫0

2𝜋

𝐵𝑧 , 𝑠𝑒𝑚𝑖=𝜇0

4𝜋𝜋 𝐼𝑅

𝐵𝑧 , ∆ 𝜃=𝜇0

4𝜋2𝜋 𝐼𝑅

∆ 𝜃2𝜋

What is for 1.5 loops?

Page 22: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

What if we had a coil of wire?

For N turns:

single loop:

A Coil of Wire

Page 23: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

far from coil: far from dipole:

magnetic dipole moment: - vector in the direction of B

Magnetic Dipole Moment

Page 24: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

The magnetic dipole moment acts like a compass needle!

In the presence of external magnetic field a current-carrying loop rotates to align the magnetic dipole moment along the field B.

Twisting of a Magnetic Dipole

Page 25: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

What are the directions of the magnetic fields at the center of the loop?

Exercise: a loop of radius R and a long straight wire. The center of the loop is 2R from the wire.

XI

I

What is the net magnetic field at the center of the loop?

|�� 𝑙𝑜𝑜𝑝|=𝜇0

4𝜋2𝜋 𝐼𝑅

|��𝑤𝑖𝑟𝑒|=𝜇0

4𝜋2 𝐼𝑟

��𝑙𝑜𝑜𝑝− ��𝑤𝑖𝑟𝑒=𝜇0

4𝜋2𝜋 𝐼𝑅

−𝜇0

4𝜋2 𝐼2𝑅

¿𝜇0 𝐼

4 𝜋 𝑅(2𝜋 −1 )

Page 26: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

How does the magnetic field around a bar magnet look like?

The Magnetic Field of a Bar Magnet

N S

Page 27: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

How do magnets interact with each other?Magnets interact with iron or steel, nickel, cobalt.

Does it interact with charged tape?

Does it work through matter?

Does superposition principle hold?Similarities with E-field:

• can repel or attract• superposition• works through matter

Differences with E-field:• B-field only interacts with some objects • curly pattern• only closed field lines

Magnets and Matter

Page 28: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Horizontal component of magnetic field depends on latitude

Maine: ~1.5.10-5 TTexas: ~2.5x10-5 T

Can use magnetic field of Earth as a reference to determine unknown field.

Magnetic Field of EarthThe magnetic field of the earth has a pattern that looks like that of a bar magnet

Page 29: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

An electric dipole consists of two opposite charges – monopoles

NS

Break magnet:

S N

There are no magnetic monopoles!

Magnetic Monopoles

Page 30: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

The magnetic field of a current loop and the magnetic field of a bar magnet look the same.

Batom 0

42z3

, R2I

What is the direction?

SNWhat is the average current I?

current=charge/second: I e

t

T 2 R

v R

evI

2

One loop:

eRvR

evR

2

1

22

The Atomic Structure of Magnets

Electrons

Page 31: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

eRv2

1Magnetic dipole moment of 1 atom:

Method 1: use quantized angular momentum

Orbital angular momentum: RmvL

Lm

eRmv

m

eeRv

2

1

2

1

2

1

Quantum mechanics: L is quantized:

sJ , 341005.1nL

If n=1: 1

2

e

mL 0.9 10 23 A m2 per atom

Magnetic Dipole Moment

Page 32: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

eRv2

1Magnetic dipole moment of 1 atom:

Method 2: estimate speed of electron

Momentum principle: netFdt

pd

Circular motion:

drp

dt p

v

Rmv Fnet

w – angular speed

2

2

0

2

4

1

R

e

R

mv

m/s 62

0

106.14

1

Rm

ev

1.3 10 23 A m2 /atom

Magnetic Dipole Moment

p p const

v / R

Page 33: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Magnetic dipole moment of 1 atom: /atommA 2 2310

Mass of a magnet: m~5g

Assume magnet is made of iron: 1 mole – 56 g

6.1023 atoms

number of atoms = 5g/56g . 6.1023 ~ 6.1022

magnet 6 1022 10 23 0.6 A m2

Magnetic Dipole Moment

Page 34: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

1. Orbital motion

There is no ‘motion’, but a distribution

Spherically symmetric cloud (s-orbital)has no

Only non spherically symmetric orbitals (p, d, f) contribute to

There is more than 1 electron in an atom

Modern Theory of Magnets

Page 35: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

2. Spin

Electron acts like spinning charge- contributes to

Electron spin contribution to is of the same order as one due to orbital momentum

Neutrons and proton in nucleus also have spin but their ‘s are much smaller than for electron

same angular momentum: m

e

2

1

NMR, MRI – use nuclear

Modern Theory of Magnets

Page 36: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Alignment of atomic magnetic dipole moments:

most materialsferromagnetic materials:iron, cobalt, nickel

Modern Theory of MagnetsWhy are only some materials magnetics?

Page 37: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Magnetic domains

Hitting or heating while in a magnetic field can magnetize the iron

Hitting or heating can also demagnetize

Modern Theory of Magnets

Page 38: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Magnetic domains

Why are there Multiple Domains?

Page 39: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Multiplier effect:

ironcoilnet BBB

coilnet BB

Electromagnet:

Iron Inside a Coil

Page 40: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Step 1: Cut up the distributioninto pieces

B

origin: center of the solenoid

Step 2: Contribution of one piece

Bz 0

42 R2I

R2 d z 2 3/2one loop:

Number of loops per meter: N/L

Number of loops in z: (N/L) z

Field due to z: Bz 0

42 R2I

R2 d z 2 3/2

N

Lz

Magnetic Field of a Solenoid

Page 41: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Step 3: Add up the contributionof all the pieces

B

dBz 0

42 R2I

R2 d z 2 3/2

N

Ldz

Bz 0

42 R2NI

L

dz

R2 d z 2 3/2 L /2

L /2

Bz 0

42 NI

L

d L / 2

d L / 2 2 R2

d L / 2

d L / 2 2 R2

Magnetic field of a solenoid:

Magnetic Field of a Solenoid

Page 42: Moving charge produces a curly magnetic field B units: T (Tesla) = kg s -2 A -1 Single Charge: Biot-Savart Law The Biot-Savart law for a short length of.

Bz 0

42 NI

L

d L / 2

d L / 2 2 R2

d L / 2

d L / 2 2 R2

Special case: R<<L, center of the solenoid:

Bz 0

42 NI

L

L / 2

L / 2 2

L / 2

L / 2 2

0

42 NI

L2

L

NIBz

0 in the middle of a long solenoid

Magnetic Field of a Solenoid