QU. Determine the range of mass m, for which the system is in equilibrium. The cocfficient of static friction between the block and the incline is a, = 0.25. Neglect friction associated with the pulley. See figure (1).

International Edition---engineering Mechanics: Statics, 4th Edition
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ISBN:9781305501607
Author:Andrew Pytel And Jaan Kiusalaas
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Chapter4: Coplanar Equilibrium Analysis
Section: Chapter Questions
Problem 4.63P: For Probs. 4.61–4.68, (a) draw the free-body diagrams for the entire assembly (or structure) and...
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QU. Determine the range of mass m, for which the system is in equilibrium. The cocfficient of static friction between the block and
the incline is a, = 0.25. Neglect friction associated with the pulley. Se figure (1).
Q2. The automobile has a mass of 1 Mg and center of mass at G. Determine the towing force F required to move the car if the back
brakes are locked, and the front wheels are free to roll. Take 4, = 0.25. See figure (2).
Q3. Determine the maximum force P that can be applied without causing movement of the 200 lb crate that has a center of gravity at
G. The cocficient of static friction at the floor is a, = 0.4. See figure (3).
2.5 t
4.5
1.50m-
0.75 m
Fig (1)
Fig (2)
Fig (3)
Transcribed Image Text:Homework QU. Determine the range of mass m, for which the system is in equilibrium. The cocfficient of static friction between the block and the incline is a, = 0.25. Neglect friction associated with the pulley. Se figure (1). Q2. The automobile has a mass of 1 Mg and center of mass at G. Determine the towing force F required to move the car if the back brakes are locked, and the front wheels are free to roll. Take 4, = 0.25. See figure (2). Q3. Determine the maximum force P that can be applied without causing movement of the 200 lb crate that has a center of gravity at G. The cocficient of static friction at the floor is a, = 0.4. See figure (3). 2.5 t 4.5 1.50m- 0.75 m Fig (1) Fig (2) Fig (3)
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