AP Physics C: Electricity & Magnetism 13.3 A Describe the Force Exerted on a Conductor Due to the Interaction Between an External Magnetic Field and an Questions

Describe magnetic forces caused by induced currents and analyse conductor motion through Lenz's law, force balance, differential equations, terminal speed, and energy.

Syllabus
Effective Fall 2024
Course
AP Physics C: Electricity & Magnetism

Exam points

  • use Lenz's law to determine the direction of the net magnetic force on a moving conductor
  • derive induced current and magnetic force for a rod or loop moving through a field boundary
  • calculate the external force required to maintain constant conductor speed against magnetic drag
  • apply Newton's second law to construct a differential equation for magnetically damped motion
  • solve a magnetic-damping differential equation and interpret its exponential speed or current

AP Physics C: Electricity & Magnetism 13.3 A Describe the Force Exerted on a Conductor Due to the Interaction Between an External Magnetic Field and an Questions question 1

[Maximum number: 9]

E\&M.3.
A conducting bar of mass M, length L, and negligible resistance is connected to two long vertical conducting rails of negligible resistance. The two rails are connected by a resistor of resistance R at the top. The entire apparatus is located in a magnetic field of magnitude B directed into the page, as shown in the figure above. The bar is released from rest and slides without friction down the rails.

Question (a)

(a)

Write, but do NOT solve, a differential equation that could be used to determine the velocity of the falling bar as a function of time t.

[ 4 ]

Question (b)

(b)

Determine an expression for the terminal velocity vTv_{T} of the bar.

Express your answers to parts (e) and (f) in terms of vT,M,L,R,Bv_{T}, M, L, R, B, and physical constants, as appropriate.

[ 2 ]

Question (c)

(c)

Using your differential equation from part (c), derive an expression for the speed of the falling bar v(t) as a function of time t.

[ 3 ]
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