PHYSICS 1B – Fall 2006courses.physics.ucsd.edu/2007/Fall/physics1b/documents/... · 2007. 10....
Transcript of PHYSICS 1B – Fall 2006courses.physics.ucsd.edu/2007/Fall/physics1b/documents/... · 2007. 10....
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PHYSICS 1B – Fall 2006
Electricity&
MagnetismFriday October 5, 2007
Course Week 1
Professor Brian Keating
SERF Building. Room 333
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Announcements• Problem Session! The Problem Session for Physics 1B will
be every Thursday at 7pm to 8:50p in CENTER HALL• First Problem Session: next Thursday October 11• Quiz next Friday October 12• Get your clickers and make sure to bring to class, every
class.• On Wednesday October 10, at the end of lecture, I will
post 3 problems drawn from your HW from Ch 15. Youwill have 3 minutes to enter your answers to the threequestions for Extra Credit.
• You can register your clickers using your PID number,with or without the “A” in front.
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Chapter 15.3Electric Fields / Electric Field
Lines
•Definition of electric field•Interaction of electric fields with charges•Electric field lines•Electric field from a point charge•Electric field from several point charges.
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The Electric Field exists in space surrounding a charge
+q
xE
ur is a vector quantity
The magnitude and directionof E varies with position inspace around a charge.
Lines are a way of visualizing how strong, and in whatdirection, an Electric Force will act on a test charge.
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Electric field due to a point chargeq at distance r, Coulomb’s Law
2
e
o
k qFE
q r= =
rr
+q -q
E
r
E
r
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The electric field vector E istangent to the electric field line
The number of electric fieldlines per unit area through asurface perpendicular to thelines is proportional to thestrength of the electric field ina given region
Electric field lines
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Electric field due to 2 + charges
A B C
+q
+q
EA EB
d r=d r>>d
EA=0
θ
!=B oE 2E cos != "
C o oE 2E cos 2E
as θ->0
Eo
Eo
looks like a pointcharge of 2q
Eo
Eo
This charge distribution isnot neutral.
Total charge=+2q
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Electric field due to a dipole
A B C
+q
-q
EA EB
d r=d r>>d
EA=2Eo
θ
!=B oE 2E sin != "
C o o
d / 2E 2E sin 2E
r
as θ goes to 0
Eo
= eo 2
k qE
r
Eo
µ= =e e
c 3 3
k qd kE
r r
dipole moment qd=µ
Far field
E falls off as 1/r3
This charge distribution isneutral, but field is not
equal to zero!
What is the total charge of thisdipole distribution?
A. +2q
B. 0
C. -2q
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Electric field lines from a dipole+q, -q
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Electric field lines from 2 + q charges
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The Electric Field exerts a Force on a Charge
E field in space- due to an array of + and - charge
E
+qF
F qE=ur ur
-qEF
+++++++++++++
-------------
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Electric field Accelerates e-
Cathode ray tube
electrons
e- beam
e-
+-
E
F
cathode anode
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Oscilloscope (ok, or a non Flat Panel TV)
J.J.ThomsonN.P. physics 1906
+
-off
1. Shoot in an electronwith battery, E field off
2. Then turn on field andshoot another electron
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An electron moving horizontally at constantvelocity flies into a constant vertical electric
field of 1000 N/C for a distance of 3 cm. Whathappens to the electron in the field region?
• A. It continues to move with constantvelocity
• B. It moves in quantum steps• C. it moves with constant acceleration• D. it stops moving
E
E-
e
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19
31
6
1.6 10 (1000)2 2 2 (0.03)
9 10
3.3 10 /
qE xv ax x
m x
v x m s
!
!= = =
=
An electron is accelerated from rest in a constantelectric field of 1000 N/C through a distance of 3 cm.Find the force on the electron. Find the velocity of theelectron. me = 9x10-31 kg.
19 161.6 10 (1000) 1.6 10F qE x x N! != = =
2 22
o
Fa
m
v v ax
=
= +
E
F=ma
+-
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Electrophoresis- Separation of DNA (Negatively charged~ -1000 e) In an Electric field ~1000 N/C,
+
-
movement
+
-
E
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Milliken Oil drop experiment
Robert Milliken(1868-1953)
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Millikan oil-drop Experiment
Eq
Find the value of q by measuring velocity of thedrop.
mg
Drag force
mg
qE
Drag forcevo
v+
A drop of oil containing negative charge is viewed through a microscope in the absence and presence of an electric field.
Drag force =6πηrvη is the viscosity
+
-
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Results of Oil Drop Measurments
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15.6 Conductors in electrostaticequilibrium
+
++
++
+
+
++
++
+
+
+
+
+
+
+
Like Charges Repel
Charges can move freely in a Conductor
At Equilibrium – the charges are not movinginitial state
non-equilibrium
E
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15.6 Conductors in electrostaticequilibrium
+ +
+
+
+
+
+
++
++
+
++
+
+
++
Charge accumulates atsharp points (small radius ofcurvature)
E=0
E
At Equilibrium
Charge is on surface (nocharge inside the conductor)
Electric field is zero insidethe conductor
Electric field is perpendicularto surface
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Excess charge is on the surface
+
+
+
+
++
+
E=0+
Excess charge moves tothe surface due torepulsion. They move asfar apart as is possible.
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E field is zero in the conductorIf E≠0, then mobilecharges would moveand not be inequilibrium. Whenmotion stops E=0.
E=0
++
+---
Eexternal
E=0
This is true in anexternal E field or anet charge
+
+
+
+
++
+
E=0+
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Example – spherical metal shell
+
- -
-
-
--
--
-+
+
++ +
+
+
+++
+q placed at center
- charges accumulate inside
+ charges accumulate outside
E =0 in the metal
E=0
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Electric field outside isperpendicular to the surface
+ ++ + ++
E E
If not, chargeswould move
Component of E ┴ tothe surface =0
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Electric Field lines around charged conductors
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Charge accumulates at smallerradius of curvature
++
++
F┴ to surface is less.Therefore the charges canbe closer together
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Charge moves to the outer surface of the conductor
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Charge is zero inside a conductor
+
++
+
+
++
+
+
+
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Faraday Cage
The E field is zero inside aclosed conducting surface.
Metal boxes protect electronicequipment, computers etc.from external electric fields.
A car is a good place to be ina thunderstorm.
A metal enclosure blockselectromagnetic waves (radio,tv, cell phone)
E=0
Metal box
ExternalE field
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Chapter 15.9Electric Flux Gauss’ Law
• Gauss’s Law gives relation betweenelectric fields and charges.
• Equivalent to Coulomb’s Law• Useful for determining E for simple
distributions of charge.
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+q
Total number of E fieldlines is proportional tocharge
Density of E field linesis proportional to themagnitude of E
Basic Idea of Gauss’ Law
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+q
surround the charge bya closed surface
The density of E-field lines (i.e. the E field) at the surface can be related to the charge q
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Gauss’s Law
The total of the electric flux out of a closed surface is equal to the charge enclosed divided by the permittivity.
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area A (perpendicular to electricfield lines)
N = no. of electric field lines
Electric Flux, ΦE, through an area A
! = "E
EA NE
E at angle of Θ to surfacenormal (red).
!" = cosE
EA
θ
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E
EE
A!
"=
A
Finding E from the flux
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Flux through an enclosed area is proportional toamount of charge enclosed
!" = # #$ cosE i i
E A N q
!" =E
o
q
!"
#
=
=12 2 2
1
4
8.85 10 /
o
ek
x C Nm
Gauss’s Law
Sum over enclosedarea
! " "E
N q+q
Enclosedarea
E field lines
Ai
Ei
Proportionality Constant
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Info• HW Solutions for CH 15 on Web next week
1 page, front and back Notes Allowed. I will give you constants (e.g., Coulomb’s constant), …but not formulae…Format: Multiple Choice, Bring your own Scantron Forms:They are available at the Bookstore (no. X-101864-PAR) and the
general store co-op.Bring your own No. 2 pencils to fill in the Scantron.Quizzes will be half conceptual and half quantitative.
Scientific calculators will be allowed, but nolaptops, cellphones. Graphing calculatorsare allowed, but formulae cannot beprogrammed in nor can any notes beprogrammed into the calculator. Studentsviolating this requirement will be in violationof the UCSD academic honesty policy, andwill receive an 'F' in Physics 1B.
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Sample Quiz Problem #1
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Sample Quiz Problem #2