Chapter 10: Q.6 (page 256)
What height does a frictionless playground slide need so that a 35 kg child reaches the bottom at a speed of 4.5 m/s?
Short Answer
As a result, the frictionless slide's height must be
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Chapter 10: Q.6 (page 256)
What height does a frictionless playground slide need so that a 35 kg child reaches the bottom at a speed of 4.5 m/s?
As a result, the frictionless slide's height must be
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The spring in FIGURE CP10.73 has a spring constant of . It is compressed , then launches a block. The horizontal surface is frictionless, but the block’s coefficient of kinetic friction on the incline is . What distance d does the block sail through the air?
Can kinetic energy ever be negative? Can gravitational potential energy ever be negative? For each, give a plausible reason for your answer without making use of any equations.
A block sliding along a horizontal frictionless surface with speed v collides with a spring and compresses it by 2.0 cm. What will be the compression if the same block collides with the spring at a speed of 2v?
A pendulum is formed from a small ball of mass m on a string of length L. AsFIGURE shows, a peg is height above the pendulum’s lowest point. From what minimum angle u must the pendulum be released in order for the ball to go over the top of the peg without the string going slack?

Protons and neutrons (together called nucleons) are held together in the nucleus of an atom by a force called the strong force. At very small separations, the strong force between two nucleons is larger than the repulsive electrical force between two protons—hence its name. But the strong force quickly weakens as the distance between the protons increases. A well-established model for the potential energy of two nucleons interacting via the strong force is
where x is the distance between the centers of the two nucleons, x0 is a constant having the value , and
Quantum effects are essential for a proper understanding of nucleons, but let us innocently consider two neutrons as if they were small, hard, electrically neutral spheres of mass and diameter . Suppose you hold two neutrons apart, measured between their centers, then release them. What is the speed of each neutron as they crash together? Keep in mind that both neutrons are moving.
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