AP Physics C: Electricity & Magnetism 9.3 A Describe Changes in a System Due to a Difference in Electric Potential Between Two Locations Questions

Analyze how a difference in electric potential changes the energy and motion of a charged system between two locations in an electric field.

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

Exam points

  • calculate potential-energy change and electric or external work using charge and potential difference
  • apply conservation of energy to find a charged particle's speed or kinetic energy
  • use equipotential paths and electrostatic path independence to determine zero or equal work
  • relate uniform-field displacement to potential difference, work, and energy change
  • sketch or interpret kinetic, potential, and total-energy changes with particle position

AP Physics C: Electricity & Magnetism 9.3 A Describe Changes in a System Due to a Difference in Electric Potential Between Two Locations Questions question 1

[Maximum number: 4]

A nonconducting rod of uniform positive linear charge density is near a sphere with charge -2.0 nC. The rod and sphere are held at rest on the x-axis, as shown in Figure 1. Equipotential lines and positions A, B, C, D, and E are labeled. Adjacent tick marks on the x-axis and the y-axis are 0.40 m apart.

The bar shown in Figure 2 represents the absolute value of the work WCEW_{\mathrm{CE}} done by the external force on the test charge to move the test charge from Position C to Position E.

Complete the following tasks on Figure 2.

- Draw a bar to represent the relative absolute value of the work WEDW_{\mathrm{ED}} done by the external force on the test charge to move the test charge from Position E to Position D.

- Draw a bar to represent the relative absolute value of the work WDAW_{\mathrm{DA}} done by the external force on the test charge to move the test charge from Position D to Position A.

- The height of each bar should be proportional to the value of WCEW_{\mathrm{CE}}. If WED=0W_{\mathrm{ED}}=0 and/or WDA=0W_{\mathrm{DA}}=0, write a "0" in the corresponding columns, as appropriate.

Figure 2

Figure 2

Calculate the approximate magnitude of the x-component of the electric field at Position B.

The positive test charge is placed at Position D. The test charge is then released from rest.

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