10. A 10 kg crate of delectable cupcakes (with rainbow sprinkles, of course) is being held at rest at the top of a frictionless INCLINED PLANE 8.0 m long, making an angle of 30° with the horizontal. The crate is then released from this position, slides down the frictionless inclined plane, and encounters a HORIZONTAL floor. The coefficient of kinetic friction 8 m between the crate and the floor is 0.400. The crate of cupcakes comes to rest at a distance d from the bottom of the inclined plane, as shown. 30° Draw two free-body diagrams: one for the crate sliding down the inclined plane, and one for the crate sliding across the horizontal surface (before it comes to rest). a.

College Physics
11th Edition
ISBN:9781305952300
Author:Raymond A. Serway, Chris Vuille
Publisher:Raymond A. Serway, Chris Vuille
Chapter7: Rotational Motion And Gravitation
Section: Chapter Questions
Problem 32P
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10. A 10 kg crate of delectable cupcakes (with rainbow sprinkles, of course)
is being held at rest at the top of a frictionless INCLINED PLANE 8.0 m
long, making an angle of 30° with the horizontal. The crate is then
released from this position, slides down the frictionless inclined plane,
and encounters a HORIZONTAL floor. The coefficient of kinetic friction
8 m
between the crate and the floor is 0.400. The crate of cupcakes comes
to rest at a distance d from the bottom of the inclined plane, as shown.
30°
a. Draw two free-body diagrams: one for the crate sliding down the inclined plane, and one for the crate
sliding across the horizontal surface (before it comes to rest).
Transcribed Image Text:10. A 10 kg crate of delectable cupcakes (with rainbow sprinkles, of course) is being held at rest at the top of a frictionless INCLINED PLANE 8.0 m long, making an angle of 30° with the horizontal. The crate is then released from this position, slides down the frictionless inclined plane, and encounters a HORIZONTAL floor. The coefficient of kinetic friction 8 m between the crate and the floor is 0.400. The crate of cupcakes comes to rest at a distance d from the bottom of the inclined plane, as shown. 30° a. Draw two free-body diagrams: one for the crate sliding down the inclined plane, and one for the crate sliding across the horizontal surface (before it comes to rest).
b. Use Newton's Laws of Motion to determine the acceleration of the crate as it slides down the inclined
plane, and use kinematics to solve for the speed of the crate at the bottom of the incline.
Transcribed Image Text:b. Use Newton's Laws of Motion to determine the acceleration of the crate as it slides down the inclined plane, and use kinematics to solve for the speed of the crate at the bottom of the incline.
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