An air puck of mass 0.17 kg is tied to a string and allowed to revolve in a circle of radius 1.4 m on a frictionless horizontal table. The other end of the string passes through a hole in the center of the table, and a mass of 0.8 kg is tied to it (Fig. P7.25). The suspended mass remains in equilibrium while the puck on the tabletop revolves. Figure P7.25 (a) What is the tension in the string? N (b) What is the force causing the centripetal acceleration on the puck? N (c) What is the speed of the puck? m/s
An air puck of mass 0.17 kg is tied to a string and allowed to revolve in a circle of radius 1.4 m on a frictionless horizontal table. The other end of the string passes through a hole in the center of the table, and a mass of 0.8 kg is tied to it (Fig. P7.25). The suspended mass remains in equilibrium while the puck on the tabletop revolves. Figure P7.25 (a) What is the tension in the string? N (b) What is the force causing the centripetal acceleration on the puck? N (c) What is the speed of the puck? m/s
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An air puck of mass 0.17 kg is tied to a string and allowed to revolve in a circle of radius 1.4 m on a frictionless horizontal table. The other end of the string passes through a hole in the center of the table, and a mass of 0.8 kg is tied to it (Fig. P7.25). The suspended mass remains in equilibrium while the puck on the tabletop revolves.
Figure P7.25
(a) What is the tension in the string?
N
(b) What is the force causing the centripetal acceleration on the puck?
N
(c) What is the speed of the puck?
m/s
N
(b) What is the force causing the centripetal acceleration on the puck?
N
(c) What is the speed of the puck?
m/s
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