A 12.0-g ball is placed in a slingshot with a spring constant of 200 N/m. The ball is stretched back 0.500 m. The slingshot is aimed straight up, then fired. What is the maximum height that the ball will reach?
213 m
106 m
98 m
182 m

The energy put into the slingshot will be translated to the ball. This energy is
(1/2)kx² = (1/2)(200N/m)(0.5)² = 25J
This will be converted entirely to gravitational potential energy at the peak of the ball's height. This is given by mgh. So mgh = 25J. h=25J/(0.012kg·9.81m/s²) = 212.37. So 213m is the best answer

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A 12.0-g ball is placed in a slingshot with a spring constant of 200 N/m. The ball is stretched back 0.500 m. The slingshot is aimed straight up, then fired. What is the maximum height that the ball will reach? 213 m 106 m 98 m 182 m

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A 12.0-g ball is placed in a slingshot with a spring constant of 200 N/m. The ball is stretched back 0.500 m. The slingshot is aimed straight up, then fired. What is the maximum height that the ball will reach?
213 m
106 m
98 m
182 m