On a steel desk rests a 2.420-kg block of wood. The coefficient of static fricti

Question

On a steel desk rests a 2.420-kg block of wood. The coefficient of static friction between the desk and the block is ?s = 0.455 and the coefficient of kinetic friction is ?k = 0.205. At time t = 0, a force F = 6.64 N is applied horizontally to the block. What is the force of friction applied to the block by the table at the following times?

t=0 and t>0

Consider the same situation, but this time the external force F is 13.4 N. Again find the force of friction acting on the block at the following times:

t=0 and t>0

Explanation / Answer

The weight of the block = 2.420 * 9.8 = 23.72 N

Force of Static friction = 23.72 * 0.455 = 10.79 N

The force of kinetic friction which is just the Weight times the coefficient

= 23.72 * 0.205 = 4.86

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