Transcript Document

The Magnetic Field
자기장
—magnetic field—
A magnet creates a field B(x).
An electric current
creates a field B(x).
(Oersted ; Ampère)
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The Magnetic Field
자기장
—magnetic field—
The field B inside and outside a magnet
occurs because the iron atoms are similar
to tiny current loops:
… both kinds of motion create a
magnetic field similar to Ampère’s law
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Example: A long straight wire with
current I
0 I
B
φˆ
2 r
0  4  107 Tm/A
B  dl  0 I
Andre-Marie Ampère
(1775-1836)
Advanced Calculus
진보된 미적분학
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Compare B due to a bar magnet
and B due to the Earth
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Magnets and Forces
►Magnets exert forces on each other.
► But there is another, very fundamental
magnetic force:
The magnetic field exerts a force on any
charged particle that moves across the field
lines.
What will happen?
F=qvxB
(magnetic force on q)
Compare: F = q E, the electric field force
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Interaction between a magnetic field
and an electric current
The magnetic field between North and
South magnet poles —
The field is approximately uniform, if
the two poles are close together.
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If a charged particle moves across a
magnetic field …
… there is a force in the direction
perpendicular to the velocity
vector.
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The Cyclotron, and other particle
accelerators
Design:
/1/ The magnetic field B
causes the particles to
cycle (circular motion) in
the dees.
/2/ The alternating
electric field E causes the
particles to gain kinetic
energy in the gap.
The 60-inch
cyclotron built by
E. O. Lawrence
(1941); used by
the Manhattan
Project; the
discovery of
Plutonium.
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Bevatron:
Proton
Synchrotron built
by E. O. Lawrence
(1954); discovery
of the antiproton
by Segrè and
Chamberlain.
Fermilab Tevatron Collider
Proton-antiproton collisions at √s = 2 TeV.
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Place a straight wire carrying electric
current across a magnetic field.
There is a force on the wire,
perpendicular to the wire.
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Place a loop of wire carrying
electric current in a magnetic field.
There is a torque on the wire,
which can produce an angular
acceleration of the loop.
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전동기
Electric Motors
—electric motor—
Basic design principle:
The rotor is an electromagnet.
Torque on the electromagnet drives
the rotation.
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Electric Motors
전동기
—electric motor—
The most common type of electric motor
for alternating current is an induction
motor. The magnetic field rotates; and
the electric current in the rotor is
induced by Faraday’s Law.
(Invented by Nikola Tesla – 1888)
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Two-Phase Induction Motor
In the two-phase motor, two sets of coils are set perpendicular to each
other surrounding the core. When alternating current is sent to the
coils, they become electromagnets where polarity rapidly changes
with each reversal of current flow. As the first coils are supplied with
current, they create a magnetic field which starts the core turning.
When the first coils' current supply reverses, the second coil set is at
its maximum supply point and creates its own magnetic field; the core
spins on. In effect the "magnetization" amount never varies and a
rotating magnetic filed is created. The result is a smooth-running,
commutator-free motor with the rotor as its only moving part.
Nikola Tesla
http://www.fi.edu/learn/case-files/tesla/motor.html
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