Answer:
force required to push the block = 219.714 lb
Explanation:
GIVEN DATA:
weight W of block = 250 lb
coefficient of friction = 0.2
consider equilibrium condition in x direction
[tex]P*cos(30)-W*sin(30)-\mu _{s}N = 0[/tex]
[tex]P*0.866-0.2N = 125[/tex].........................(1)
consider equilibrium condition in Y direction
[tex]N-Wcos(30)-Psin(30)= 0[/tex]
[tex]N-0.5P=216.503[/tex].....................(2)
SOLVING 1 and 2 equation we get N value
N = 326.36 lb
putting N value in either equation we get force required to push the block = 219.714 lb
