Answer:
[tex]\mu = 0.14[/tex]
Explanation:
There are two forces acting on the box to slide it over the horizontal surface
1) [tex]F_1 = 410 N[/tex] in forward direction
2) [tex]F_2 = 260 N[/tex] in forward direction
now it is given that box is moving with constant speed so net force on the box must be zero
[tex]F_1 + F_2 - f = 0[/tex]
so we will have
[tex]410 + 260 - f = 0[/tex]
[tex]f = 670 N[/tex]
now by the formula of friction force we know that
[tex]f = \mu mg[/tex]
[tex]670 = \mu (490 \times 9.81)[/tex]
[tex]\mu = 0.14[/tex]
Answer:
μ=0.16
Explanation:
Mass of crate = 490 kg
Pushing force = 410 N
Pulling force = 260 N
Lets coefficient of friction =μ
The normal force,N= mg
N= 490 x 9.81 =4806.9 N
We know that friction force(fr)
fr= μ m g
fr =4806.9 μ
The total horizontal force F
F= 410 + 260
F=670 N
For sliding condition the maximum friction force will be equal to total horizontal force
F=fr
670 = 4806.9 μ
μ=0.16
So the coefficient of friction is 0.16.
