33. Two blocks are free to slide along the frictionless, AMT WOoden track shown in Figure P9.33. The block of W mass m, = 5.00 kg is released from the position shown, at height h 5.00 m above the flat part of the track. Protruding from its front end is the north pole of a strong magnet, which repels the north pole of an iden- tical magnet embedded in the back end of the block of mass m %3D 10.0 kg, initially at rest. The two blocks never touch. Calculate the maximum height to which m, rises after the elastic collision. My Figure P9.33

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Chapter1: Units, Trigonometry. And Vectors
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33. Two blocks are free to slide along the frictionless,
AMT Wooden track shown in Figure P9.33. The block of
W mass m, = 5.00 kg is released from the position shown,
at height h = 5.00 m above the flat part of the track.
Protruding from its front end is the north pole of a
strong magnct, which repels the north pole of an iden-
tical magnet embedded in the back end of the block
of mass l,
10.0 kg, initially at rest. The two blocks
%3D
never touch. Calculate the maximum height to which
m, rises after the elastic collision.
Figure P9.33
Transcribed Image Text:33. Two blocks are free to slide along the frictionless, AMT Wooden track shown in Figure P9.33. The block of W mass m, = 5.00 kg is released from the position shown, at height h = 5.00 m above the flat part of the track. Protruding from its front end is the north pole of a strong magnct, which repels the north pole of an iden- tical magnet embedded in the back end of the block of mass l, 10.0 kg, initially at rest. The two blocks %3D never touch. Calculate the maximum height to which m, rises after the elastic collision. Figure P9.33
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