A cork gun contains a spring whose spring constant is 20 N/m. The spring is compressed by a distance ΔX = 3.7 cm and used to propel from the gun a cork of mass 4.41 g. Assuming the cork is released when the spring passes through its equilibrium position Xeq, what is the speed of the cork as it is released from the spring? Suppose now that the cork temporarily sticks to the spring, causing the spring to extend 1.5 cm beyond its equilibrium position before separation occurs. What is the speed of the cork as it is released from the spring in this case?

University Physics Volume 1
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Chapter8: Potential Energy And Conservation Of Energy
Section: Chapter Questions
Problem 79AP: Consider a block of mass 0.200 kg attached to a spring of spring constant 100 N/m. The block is...
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A cork gun contains a spring whose spring constant is 20 N/m. The spring is compressed by a distance ΔX = 3.7 cm and used to propel from the gun a cork of mass 4.41 g. Assuming the cork is released when the spring passes through its equilibrium position Xeq, what is the speed of the cork as it is released from the spring? Suppose now that the cork temporarily sticks to the spring, causing the spring to extend 1.5 cm beyond its equilibrium position before separation occurs. What is the speed of the cork as it is released from the spring in this case? 

A cork gun contains a spring whose spring constant is 20 N/m. The spring is compressed by a distance AX = 3.7
cm and used to propel from the gun a cork of mass 4.41 g. Assuming the cork is released when the spring passes
through its equilibrium position Xeq, what is the speed of the cork as it is released from the spring?
Xeq
AX►
V =
2.49 m/s
Hint:
Transcribed Image Text:A cork gun contains a spring whose spring constant is 20 N/m. The spring is compressed by a distance AX = 3.7 cm and used to propel from the gun a cork of mass 4.41 g. Assuming the cork is released when the spring passes through its equilibrium position Xeq, what is the speed of the cork as it is released from the spring? Xeq AX► V = 2.49 m/s Hint:
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