2. The two blocks are attached to each other by a massless string that is wrapped around a frictionless pulley as shown in figure-2. When the bottom 4.00 kg block is pulled to the left by the constant force P = 45 N, the top 2.00 kg block slides across it to the right. Assume that the coefficient of kinetic friction between all surfaces is uk = 0.400 2.0 kg 4.0 kg Figure 2 Page 1 (a) Draw a complete free body diagram of this system. (b) Find the magnitude and direction of the acceleration of each block. (c) Find the tension T on the rope.

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Chapter1: Units, Trigonometry. And Vectors
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2. The two blocks are attached to each other by a massless string that is wrapped
around a frictionless pulley as shown in figure-2. When the bottom 4.00 kg block is
pulled to the left by the constant force P = 45 N, the top 2.00 kg block slides across
it to the right. Assume that the coefficient of kinetic friction between all surfaces
is Hk = 0.400
%3D
2.0 kg
4.0 kg
Figure 2
Page 1
(a) Draw a complete free body diagram of this system.
(b) Find the magnitude and direction of the acceleration of each block.
(c) Find the tension T on the rope.
Transcribed Image Text:2. The two blocks are attached to each other by a massless string that is wrapped around a frictionless pulley as shown in figure-2. When the bottom 4.00 kg block is pulled to the left by the constant force P = 45 N, the top 2.00 kg block slides across it to the right. Assume that the coefficient of kinetic friction between all surfaces is Hk = 0.400 %3D 2.0 kg 4.0 kg Figure 2 Page 1 (a) Draw a complete free body diagram of this system. (b) Find the magnitude and direction of the acceleration of each block. (c) Find the tension T on the rope.
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