A 0.500-kg block, attached to a spring with length 0.60 m and force constant 40.0 N/m. is at rest with the back of the block at point A on a frictionless, horizontal air table ( Fig. P7.69 ). The mass of the spring is negligible. You move the block to the right along the surface by pulling with a constant 20.0-N horizontal force, (a) What is the block’s speed when the back of the block reaches point B . which is 0.25 m to the right of point A ? (b) When the back of the block reaches point B . you let go of the block. In the subsequent motion, how close does the block get to the wall where the left end of the spring is attached?
A 0.500-kg block, attached to a spring with length 0.60 m and force constant 40.0 N/m. is at rest with the back of the block at point A on a frictionless, horizontal air table ( Fig. P7.69 ). The mass of the spring is negligible. You move the block to the right along the surface by pulling with a constant 20.0-N horizontal force, (a) What is the block’s speed when the back of the block reaches point B . which is 0.25 m to the right of point A ? (b) When the back of the block reaches point B . you let go of the block. In the subsequent motion, how close does the block get to the wall where the left end of the spring is attached?
A 0.500-kg block, attached to a spring with length 0.60 m and force constant 40.0 N/m. is at rest with the back of the block at point A on a frictionless, horizontal air table (Fig. P7.69). The mass of the spring is negligible. You move the block to the right along the surface by pulling with a constant 20.0-N horizontal force, (a) What is the block’s speed when the back of the block reaches point B. which is 0.25 m to the right of point A? (b) When the back of the block reaches point B. you let go of the block. In the subsequent motion, how close does the block get to the wall where the left end of the spring is attached?
A 4.50 ✕ 105 kg subway train is brought to a stop from a speed of 0.500 m/s in 0.900 m by a large spring bumper at the end of its track. What is the force constant k of the spring (in N/m)?
m
A shown in the picture, a 238 g mass slides down a curved incline then collides with a spring. The spring constant of the spring is 106 N/m. Assume that friction is
negligble in these problems.
(A) If the mass starts from rest at a height of 1.97 cm, what is the final compression of the spring when the mass comes to rest? Assume the spring is initially
uncompressed.
2.95 cm
(B) If the mass initially compresses the spring 1.14 cm, what is the maximum height the mass rises to on the incline? Assume the mass is released from rest.
(C) If the mass is released from rest at a height of 1.97 cm, what is the compression of the spring when the mass has a speed of 45.4 cm/s?
The 1.1 kgkg physics book in figure is connected by a string to a 550 gg coffee cup. The book is given a push up the slope and released with a speed of 2.9 m/sm/s . The coefficients of friction are μsμs =0.50=0.50 and μkμk =0.20=0.20.
How far does the book slide?
Express your answer with the appropriate units.
Chapter 7 Solutions
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