Answer:
Force carried by builder at rear end is F = 308.1 N
Explanation:
As we know that the weight is carried up along the plane in rotational equilibrium condition
So here we can use the torque equilibrium condition
Torque due to force of rear person about the position of front person = Torque due to weight of the block about the position of front person
so we will have
[tex]F(W cos\theta) = mg sin\theta(L/2) + mgcos\theta(W/2)[/tex]
[tex]F (1cos20) = 197/2(3.10 sin20 + 2 cos20)[/tex]
[tex]F cos20 = 289.55[/tex]
[tex]F = 308.1 N[/tex]
