Let x=0 be the beginning of the magnetic field. Express the area (A), and express vw in terms of the area. Then what is vBw in terms of magnetic flux? The magnetic force on the conducting charges is an EMF, an electromotive force. Use these to derive the following expression for the EMF: dPm dt There should be a minus sign, but let's not worry about that for now. B = 0.05 T (into the board) Frictionless Conducting RailsX X X X X X X¡ x × X X X ! ххх хххX ххх хх хххх ххх|х хххх 300 m/s хххх ххx|х хххх ххXх ХXXI ххххх хГх х x= Xo + vt Frictionless Conducting RailsX The entire assignment is based on this situation. A conducting rod is sliding through a magnetic field along frictionless rails. U 00T w = 2/3 m

Principles of Physics: A Calculus-Based Text
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Chapter22: Magnetic Forces And Magnetic Fields
Section: Chapter Questions
Problem 24P: A current loop with magnetic dipole moment is placed in a uniform magnetic field , with its moment...
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Let x=0 be the beginning of the magnetic field.  Express the area (A), and express vw in terms of the area.  Then what is vBw in terms of magnetic flux?

The magnetic force on the conducting charges is an EMF, an electromotive force.  Use these to derive the following expression for the EMF:

 

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Let x=0 be the beginning of the magnetic field. Express the area (A), and express vw in terms of the
area. Then what is vBw in terms of magnetic flux?
The magnetic force on the conducting charges is an EMF, an electromotive force. Use these to
derive the following expression for the EMF:
dPm
dt
There should be a minus sign, but let's not worry about that for now.
Transcribed Image Text:Let x=0 be the beginning of the magnetic field. Express the area (A), and express vw in terms of the area. Then what is vBw in terms of magnetic flux? The magnetic force on the conducting charges is an EMF, an electromotive force. Use these to derive the following expression for the EMF: dPm dt There should be a minus sign, but let's not worry about that for now.
B = 0.05 T (into the board)
Frictionless Conducting RailsX X X X X X X¡ x × X X X
! ххх хххX ххх хх
хххх ххх|х хххх
300 m/s
хххх ххx|х хххх
ххXх ХXXI ххххх
хГх х
x= Xo + vt
Frictionless Conducting RailsX
The entire assignment is based on this situation. A conducting rod is sliding through a
magnetic field along frictionless rails.
U 00T
w = 2/3 m
Transcribed Image Text:B = 0.05 T (into the board) Frictionless Conducting RailsX X X X X X X¡ x × X X X ! ххх хххX ххх хх хххх ххх|х хххх 300 m/s хххх ххx|х хххх ххXх ХXXI ххххх хГх х x= Xo + vt Frictionless Conducting RailsX The entire assignment is based on this situation. A conducting rod is sliding through a magnetic field along frictionless rails. U 00T w = 2/3 m
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