A 5.20–kg block is set into motion up an inclined plane with an initial speed of

Question

A 5.20–kg block is set into motion up an inclined plane with an initial speed of vi = 7.40 m/s (see figure below). The block comes to rest after traveling d = 3.00 m along the plane, which is inclined at an angle of ? = 30.0° to the horizontal.

(a) For this motion, determine the change in the block's kinetic energy. J

(b) For this motion, determine the change in potential energy of the block–Earth system. J

(c) Determine the friction force exerted on the block (assumed to be constant). N

(d) What is the coefficient of kinetic friction?

Explanation / Answer

a) delta_KE = KE2 - KE1

= 0.5*m*(v2^2 - v1^2)

= 0.5*5.2*(0^2 - 7.4^2)

= -142.376 J

b) change in potentail energy = m*g*d*sin(theta)

= 5.2*9.8*3*sin(30)

= 76.44 J

c) Workdone by friction = change in mechanical energy

= -142.376 + 76.44

= -65.936 J

Frictional force = W_friction/d

= 65.936/3

= 21.98 N

d) W_friction = mue_k*N*d*cos(180)

W_friction = - mue_k*m*g*cos(30)*d

==> mue_k = -W_friction/(m*g*cos(30)*d)

= -(-65.936)/(5.2*9.8*cos(30)*3)

= 0.498

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