A roller-coaster car may be represented by a block of mass 40.0 kg. The car is released from rest at a height h = 50.0 m above the ground and slides along a frictionless track. The car encounters a loop of radius R = 20.0 m at ground level, as shown in the figure below. As you will learn in the course of this problem, the initial height 50.0 m is great enough so that the car never loses contact with the track. a) Find the speed of the car at the top of the loop. b) Find the minimum initial height hmin at which the car can be released that still allows the car to stay in contact with the track at the top of the loop.

Physics for Scientists and Engineers: Foundations and Connections
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ISBN:9781133939146
Author:Katz, Debora M.
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Chapter9: Energy In Nonisolated Systems
Section: Chapter Questions
Problem 56PQ
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A roller-coaster car may be represented by a block of mass 40.0 kg. The car is released
from rest at a height h = 50.0 m above the ground and slides along a frictionless track.
The car encounters a loop of radius R = 20.0 m at ground level, as shown in the figure
below. As you will learn in the course of this problem, the initial height 50.0 m is great
enough so that the car never loses contact with the track.
a) Find the speed of the car at the top of the loop.
b) Find the minimum initial height hmin at which the car can be released that still
allows the car to stay in contact with the track at the top of the loop.
6. A roller-coaster car may be represented by a block of mass 40.0 kg. The car is released
from rest at a height h = 50.0 m above the ground and slides along a frictionless track.
The car encounters a loop of radius R = 20.0 m at ground level, as shown in the figure
below. As you will learn in the course of this problem, the initial height 50.0 m is great
enough so that the car never loses contact with the track.
a) Find the speed of the car at the top of the loop.
b) Find the minimum initial height hmin at which the car can be released that still
allows the car to stay in contact with the track at the top of the loop.
Transcribed Image Text:6. A roller-coaster car may be represented by a block of mass 40.0 kg. The car is released from rest at a height h = 50.0 m above the ground and slides along a frictionless track. The car encounters a loop of radius R = 20.0 m at ground level, as shown in the figure below. As you will learn in the course of this problem, the initial height 50.0 m is great enough so that the car never loses contact with the track. a) Find the speed of the car at the top of the loop. b) Find the minimum initial height hmin at which the car can be released that still allows the car to stay in contact with the track at the top of the loop.
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