A spring has an unstretched length of 20 cm. A 100 g mass hanging from the spring stretches it to an equilibrium length of 30 cm. a. Suppose the mass is pulled down to where the spring’s length is 40 cm. When it is released, it begins to oscillate. What is the amplitude of the oscillation? A. 5.0 cm B. 10 cm C. 20 cm D. 40 cm b. For the data given above, what is the frequency of the oscillation? A. 0.10 Hz B. 0.62 Hz C.1.6 Hz D. 10Hz c. Suppose this experiment were done on the moon, where the free-fall acceleration is approximately 1/6 of that on the earth. How would this change the frequency of the oscillation? A. The frequency would decrease. B. The frequency would increase. C. The frequency would stay the same.
A spring has an unstretched length of 20 cm. A 100 g mass hanging from the spring stretches it to an equilibrium length of 30 cm. a. Suppose the mass is pulled down to where the spring’s length is 40 cm. When it is released, it begins to oscillate. What is the amplitude of the oscillation? A. 5.0 cm B. 10 cm C. 20 cm D. 40 cm b. For the data given above, what is the frequency of the oscillation? A. 0.10 Hz B. 0.62 Hz C.1.6 Hz D. 10Hz c. Suppose this experiment were done on the moon, where the free-fall acceleration is approximately 1/6 of that on the earth. How would this change the frequency of the oscillation? A. The frequency would decrease. B. The frequency would increase. C. The frequency would stay the same.
A spring has an unstretched length of 20 cm. A 100 g mass hanging from the spring stretches it to an equilibrium length of 30 cm.
a. Suppose the mass is pulled down to where the spring’s length is 40 cm. When it is released, it begins to oscillate. What is the amplitude of the oscillation?
A. 5.0 cm
B. 10 cm
C. 20 cm
D. 40 cm
b. For the data given above, what is the frequency of the oscillation?
A. 0.10 Hz
B. 0.62 Hz
C.1.6 Hz
D. 10Hz
c. Suppose this experiment were done on the moon, where the free-fall acceleration is approximately 1/6 of that on the earth. How would this change the frequency of the oscillation?
4.21 ⚫ BIO World-class sprinters can accelerate out of the starting
blocks with an acceleration that is nearly horizontal and has magnitude
15 m/s². How much horizontal force must a 55 kg sprinter exert on the
starting blocks to produce this acceleration? Which object exerts the
force that propels the sprinter: the blocks or the sprinter herself?
No chatgpt pls will upvote
Please don't use Chatgpt will upvote and give handwritten solution
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