Concept explainers
(a)
The amount of work done by the force along the purple path.
(a)
Answer to Problem 43P
The work done by the force along the purple path is
Explanation of Solution
Given info: The coordinates of point (C) is
Along path OA the work is done is only in
Here,
Substitute
The value
Substitute
Thus, work done along OA is
Work done along AC is,
Substitute
The value of
Substitute
Thus, the work done along AC is
The work done along purple path is,
Substitute
Conclusion:
Therefore, the work done in the purple path is
(b)
The amount of work done by the force along the red path.
(b)
Answer to Problem 43P
The work done by the force along the red path is
Explanation of Solution
Given info: The coordinates of point (C) is
Work done along OB is,
Substitute
The value of
Substitute
Thus, the work done along the path OB is
Work done along BC is,
Substitute
Along path BC the value of
Substitute
Thus, the work done along the path OB is
The work done along red path is,
Substitute
Conclusion:
Therefore, the work done by the force along the red path is
(c)
The amount of work done by the force along the blue path.
(c)
Answer to Problem 43P
The work done by the force along the blue path is
Explanation of Solution
Given info: The coordinates of point (C) is
The work done along the blue path is,
Substitute
The value of
Conclusion:
Therefore, the work done by the force along the blue path is
(d)
Whether
(d)
Answer to Problem 43P
The force
Explanation of Solution
Given info: The coordinates of point (C) is
The work done by the force is non conservative in nature as a force is a conservative force if the work done is independent of the path the particle takes.
For the given case the work done in every case is different as the path changes for each of the cases. From the above calculation the work done by the force
Conclusion:
Therefore, the work done by force along every path is different hence it is a non conservative force in nature.
(e)
The reason for the force
(e)
Answer to Problem 43P
The work done along each path is different.
Explanation of Solution
Given info: The coordinates of point (C) is
The work done by the force
The work done by the given force
Conclusion:
Therefore, the force is non conservative in nature because work done along each path is different.
Want to see more full solutions like this?
Chapter 6 Solutions
Principles of Physics: A Calculus-Based Text
- A nonconstant force is exerted on a particle as it moves in the positive direction along the x axis. Figure P9.26 shows a graph of this force Fx versus the particles position x. Find the work done by this force on the particle as the particle moves as follows. a. From xi = 0 to xf = 10.0 m b. From xi = 10.0 to xf = 20.0 m c. From xi = 0 to xf = 20.0 m FIGURE P9.26 Problems 26 and 27.arrow_forward(a) A force F=(4xi+3yj), where F is in newtons and x and y are in meters, acts on an object as the object moves in the x direction from the origin to x = 5.00 m. Find the work W=Fdr done by the force on the object. (b) What If? Find the work W=Fdr done by the force on the object if it moves from the origin to (5.00 m, 5.00 m) along a straightline path making an angle of 45.0 with the positive x axis. Is the work done by this force dependent on the path taken between the initial and final points?arrow_forwardThe force acting on a particle varies as shown in Figure P6.14. Find the work done by the force on the particle as it moves (a) from x = 0 to x = 8.00 m, (b) from x = 8.00 m to x= 10.0 m, and (c) from x = 0 to x = 10.0 m.arrow_forward
- A shopper pushes a grocery cart 20.0 m at constant speed on level ground, against a 35.0 N frictional force. He pushes in a direction 25.0° below the horizontal. (a) What is the work done on the cart by friction? (b) What is the work done on the cart by the gravitational force? (c) What is the work done on the cart by the shopper? (d) Find the force the shopper exerts, using energy considerations. (e) What is the total work done on the cart?arrow_forwardA block of mass m = 2.50 kg is pushed a distance d = 2.20 m along a frictionless, horizontal table by a constant applied force of magnitude F = 16.0 N directed at an angle = 25.0 below the horizontal as shown in Figure P6.3. Determine the work done on the block by (a) the applied force, (b) the normal force exerted by the table, (c) the gravitational force, and (d) the net force on the block. Figure P6.3arrow_forwardA 4.00-kg particle moves from the origin to position , having coordinates x = 5.00 m and y = 5.00 m (Fig. P7.31). One force on the particle is the gravitational force acting in the negative y direction. Using Equation 7.3, calculate the work done by the gravitational force on the particle as it goes from O to along (a) the purple path, (b) the red path, and (c) the blue path, (d) Your results should all be identical. Why? Figure P7.31arrow_forward
- The force acting on a particle is Fx = (8x 16), where F is in newtons anti x is in meters. (a) Make a plot of this force versus x from x = 0 to x = 3.00 m. (b) From your graph, find the net work done by this force on the particle as it moves from x = 0 to x = 3.00 m.arrow_forwardThe force acting on a panicle varies as shown in Figure la P7.14. Find the work done by the force on the particle as it moves (a) from x = 0 to x = 8.00 m. (b) from x = 8.00 m to x = 10.0 m, and (c) from x = 0 to x = 10.0 m.arrow_forwardA particle moves in one dimension under the action of a conservative force. The potential energy of the system is given by the graph in Figure P8.55. Suppose the particle is given a total energy E, which is shown as a horizontal line on the graph. a. Sketch bar charts of the kinetic and potential energies at points x = 0, x = x1, and x = x2. b. At which location is the particle moving the fastest? c. What can be said about the speed of the particle at x = x3? FIGURE P8.55arrow_forward
- (a) Can the kinetic energy of a system be negative? (b) Can the gravitational potential energy of a system be negative? Explain.arrow_forwardGive an example of a situation in which there is a force and a displacement, but the force does no work. Explain why it does no work.arrow_forwardA particle moves along the xaxis from x = 12.8 m to x = 23.7 m under the influence of a force F=375x3+3.75x where F is in newtons and x is in meters. Using numerical integration, determine the work done by this force on the particle during this displacement. Your result should he accurate to within 2%.arrow_forward
- Principles of Physics: A Calculus-Based TextPhysicsISBN:9781133104261Author:Raymond A. Serway, John W. JewettPublisher:Cengage LearningPhysics for Scientists and Engineers with Modern ...PhysicsISBN:9781337553292Author:Raymond A. Serway, John W. JewettPublisher:Cengage LearningPhysics for Scientists and EngineersPhysicsISBN:9781337553278Author:Raymond A. Serway, John W. JewettPublisher:Cengage Learning
- Physics for Scientists and Engineers: Foundations...PhysicsISBN:9781133939146Author:Katz, Debora M.Publisher:Cengage LearningPhysics for Scientists and Engineers, Technology ...PhysicsISBN:9781305116399Author:Raymond A. Serway, John W. JewettPublisher:Cengage LearningUniversity Physics Volume 1PhysicsISBN:9781938168277Author:William Moebs, Samuel J. Ling, Jeff SannyPublisher:OpenStax - Rice University