Concept explainers
(a)
The gravitational potential energy of the graph-Earth system at the grape’s initial position.
(a)

Answer to Problem 82PQ
The gravitational potential energy of the graph-Earth system at the grape’s initial position is
Explanation of Solution
The grapes position at different heights is shown below.
Write the expression for the radius of bowl.
Here,
Write the expression for the gravitational potential energy.
Here,
Conclusion:
Initially grape is resting at upper edge. Thus, initial height is equal to radius of bowl.
Substitute
Substitute
Here,
Therefore, the gravitational potential energy of the graph-Earth system at the grape’s initial position is
(b)
The kinetic energy of the grape when it reaches the bottom of the bowl.
(b)

Answer to Problem 82PQ
The kinetic energy of the grape when it reaches the bottom of the bowl is
Explanation of Solution
Take the bottom of the bowl as
Write conservation of energy equation as the grape moves from top of the bowl to bottom of bowl.
Here,
Conclusion:
In problem it is given that initially the grape is at rest at upper edge of bowl. At bottom of bowl potential energy is zero, since
Substitute
Substitute
Therefore, the kinetic energy of the grape when it reaches the bottom of the bowl is
(c)
The speed of the grape when it reaches the bottom of the bowl.
(c)

Answer to Problem 82PQ
The speed of the grape when it reaches the bottom of the bowl is
Explanation of Solution
Kinetic energy of the grape at bottom of bowl is obtained as
Write the expression for kinetic energy of grape.
Here,
Rearrange above equation to get
Conclusion:
Substitute
Therefore, the speed of the grape when it reaches the bottom of the bowl is
(d)
The potential and kinetic energies of the grape when it reaches a point that is height
(d)

Answer to Problem 82PQ
The potential energy of the grape when it reaches a point that is height
Explanation of Solution
Rewrite equation (I) to get potential energy at a height.
Write conservation of energy equation as the grape moves from the top of the bowl to a height
Here,
Conclusion:
Substitute
In problem it is given that initially the ball is at rest at upper edge of bowl. Kinetic energy is zero at top edge of bowl. At top edge of bowl potential energy is
Substitute
Therefore, the potential energy of the grape when it reaches a point that is height
Want to see more full solutions like this?
Chapter 8 Solutions
EBK PHYSICS FOR SCIENTISTS AND ENGINEER
- Hi! I need help with these calculations for part i and part k for a physics Diffraction Lab. We used a slit width 0.4 mm to measure our pattern.arrow_forwardExamine the data and % error values in Data Table 3 where the angular displacement of the simple pendulum decreased but the mass of the pendulum bob and the length of the pendulum remained constant. Describe whether or not your data shows that the period of the pendulum depends on the angular displacement of the pendulum bob, to within a reasonable percent error.arrow_forwardIn addition to the anyalysis of the graph, show mathematically that the slope of that line is 2π/√g . Using the slope of your line calculate the value of g and compare it to 9.8.arrow_forward
- An object is placed 24.1 cm to the left of a diverging lens (f = -6.51 cm). A concave mirror (f= 14.8 cm) is placed 30.2 cm to the right of the lens to form an image of the first image formed by the lens. Find the final image distance, measured relative to the mirror. (b) Is the final image real or virtual? (c) Is the final image upright or inverted with respect to the original object?arrow_forwardConcept Simulation 26.4 provides the option of exploring the ray diagram that applies to this problem. The distance between an object and its image formed by a diverging lens is 5.90 cm. The focal length of the lens is -2.60 cm. Find (a) the image distance and (b) the object distance.arrow_forwardPls help ASAParrow_forward
- Physics for Scientists and Engineers: Foundations...PhysicsISBN:9781133939146Author:Katz, Debora M.Publisher:Cengage LearningPrinciples of Physics: A Calculus-Based TextPhysicsISBN:9781133104261Author:Raymond A. Serway, John W. JewettPublisher:Cengage LearningUniversity Physics Volume 1PhysicsISBN:9781938168277Author:William Moebs, Samuel J. Ling, Jeff SannyPublisher:OpenStax - Rice University
- College PhysicsPhysicsISBN:9781938168000Author:Paul Peter Urone, Roger HinrichsPublisher:OpenStax CollegePhysics for Scientists and Engineers, Technology ...PhysicsISBN:9781305116399Author:Raymond A. Serway, John W. JewettPublisher:Cengage LearningCollege PhysicsPhysicsISBN:9781305952300Author:Raymond A. Serway, Chris VuillePublisher:Cengage Learning





