Concept explainers
Two point charges, q1 = −2.0 μC and q2 = 2.0 μC, are placed on the x axis at x = 1.0 m and x = −1.0 m, respectively (Fig. P26.24).
- a. What are the electric potentials at the points P (0, 1.0 m) and R (2.0 m, 0)?
- b. Find the work done in moving a 1.0-μC charge from P to R along a straight line joining the two points.
- c. Is there any path along which the work done in moving the charge from P to R is less than the value from part (b)? Explain.
(a)
The electric potential at
Answer to Problem 24PQ
The electric potential at
Explanation of Solution
Write the expression for electric potential due to two charges.
Write the expression for distance between two points.
Conclusion:
Consider the figure 1 below.
Substitute,
Substitute,
Substitute,
Consider figure 2 given below.
Substitute,
Substitute,
Substitute,
Therefore, the electric potential at
(b)
The work done in moving a
Answer to Problem 24PQ
The work done in moving a
Explanation of Solution
The work done will be equal to change in potential energy between two points.
Write the expression for change in electric potential energy.
Here,
Conclusion:
Substitute,
Therefore, the work done in moving a
(c)
The path along which the work done is less than the value obtained in part (b).
Answer to Problem 24PQ
No, there is no other path through which the charge can move so that the work done is less than the value obtained part (b).
Explanation of Solution
Write the expression for work done in terms of change in potential energy.
The work done is depends on charge and the change in potential, and does not depends on the path followed by the particle.
Hence, there is no other path in which work done is less than
Conclusion:
Therefore, the work done is not depends on the path followed by the particle, and only depends on the change in potential. There is no other path with work done less than
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Chapter 26 Solutions
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