A downhill skier starts skiing down from the top of a mountain from a height H. Assuming no frictional forces act on the skier until she reaches the bottom of the hill and comes to a safe stop, which one of the following statements is true? When the skier is halfway down the mountain, her speed is one-half of the speed she has at the bottom before friction begins to slow her down. The principle of conservation of mechanical energy does not apply as the skier is stopping. When the skier is halfway down the mountain, her total mechanical energy is reduced to one-half its initial value. The kinetic energy of the skier decreases as her gravitational potential energy decreases. The skier's initial potential energy is equal to the skier's initial kinetic energy.

Principles of Physics: A Calculus-Based Text
5th Edition
ISBN:9781133104261
Author:Raymond A. Serway, John W. Jewett
Publisher:Raymond A. Serway, John W. Jewett
Chapter7: Conservation Of Energy
Section: Chapter Questions
Problem 21P: A 5.00-kg block is set into motion up an inclined plane with an initial speed of i = 8.00 m/s (Fig....
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1. Please answer
A downhill skier starts skiing down from the top of a mountain from a height H. Assuming no frictional forces act on the
skier until she reaches the bottom of the hill and comes to a safe stop, which one of the following statements is true?
When the skier is halfway down the mountain, her speed is one-half of the speed she has at the bottom
before friction begins to slow her down.
The principle of conservation of mechanical energy does not apply as the skier is stopping.
When the skier is halfway down the mountain, her total mechanical energy is reduced to one-half its initial
value.
The kinetic energy of the skier decreases as her gravitational potential energy decreases.
The skier's initial potential energy is equal to the skier's initial kinetic energy.
Transcribed Image Text:A downhill skier starts skiing down from the top of a mountain from a height H. Assuming no frictional forces act on the skier until she reaches the bottom of the hill and comes to a safe stop, which one of the following statements is true? When the skier is halfway down the mountain, her speed is one-half of the speed she has at the bottom before friction begins to slow her down. The principle of conservation of mechanical energy does not apply as the skier is stopping. When the skier is halfway down the mountain, her total mechanical energy is reduced to one-half its initial value. The kinetic energy of the skier decreases as her gravitational potential energy decreases. The skier's initial potential energy is equal to the skier's initial kinetic energy.
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