If a 3kg3kg object moving at 1 m/s1ms slows down to a halt after moving 2 m, what is the friction coefficient of the surface that the object was moving over?

1 Answer
Andrea B.
Jun 21, 2018

mu= 0,0255μ=0,0255

Explanation:

initial kinetic energy
E_k = 1/2 m xx v^2 = 1/2 xx 3 kg xx 1 m^2/s^2 = 1,5 J Ek=12m×v2=12×3kg×1m2s2=1,5J
if the object will stop after 2 m this energy is lost with the friction work
W_f = F xx s = mu xx g xx m xx s= mu xx 9,8 m/s^2 xx 3 kg xx 2 m = mu xx 58,8JWf=F×s=μ×g×m×s=μ×9,8ms2×3kg×2m=μ×58,8J
since
E_k= W_fEk=Wf
1,5 J = mu xx 58,8 J1,5J=μ×58,8J
friction coefficient
mu = 0,0255μ=0,0255

by the second dynamic principle
F= m xx a F=m×a
a= F/m = (mu xx g xx m)/ m = mu xx g = 0,25 m/s^2a=Fm=μ×g×mm=μ×g=0,25ms2
by the cinematic equation
v= -a xx t + v°
t= v°/a = (1 m/s)/(0,25 m/s^2)= 4 s
s= -1/2 a xx t^2+ v° xx t= 1/2 xx 0,25 m/s^2 xx (4s)^2 + 1m/s xx 4 s=-2m + 4 m = 2m
and the datas are verificated

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