= 3.00 kg on a frictionless surface (see figure). The pulley rotates about a frictionless axle and has a moment of inertia of 0.440 kg · m and a radius of 0.310 m. An object of mass m, = 4.80 kg is connected by a light cord to an object of mass m, Assume that the cord does not slip on the pulley. T2 тz T1 т (a) Find the acceleration of the two masses. |m/s? (b) Find the tensions T, and T,. T1 T2

College Physics
11th Edition
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Author:Raymond A. Serway, Chris Vuille
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Chapter1: Units, Trigonometry. And Vectors
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= 3.00 kg on a frictionless surface (see figure). The pulley rotates about a frictionless axle and has a moment of inertia of 0.440 kg · m and a radius of 0.310 m.
An object of mass m, = 4.80 kg is connected by a light cord to an object of mass m,
Assume that the cord does not slip on the pulley.
T2
тz
T1
т
(a) Find the acceleration of the two masses.
|m/s?
(b) Find the tensions T, and T,.
T1
T2
Transcribed Image Text:= 3.00 kg on a frictionless surface (see figure). The pulley rotates about a frictionless axle and has a moment of inertia of 0.440 kg · m and a radius of 0.310 m. An object of mass m, = 4.80 kg is connected by a light cord to an object of mass m, Assume that the cord does not slip on the pulley. T2 тz T1 т (a) Find the acceleration of the two masses. |m/s? (b) Find the tensions T, and T,. T1 T2
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