Hint: Use the feet of the climber as the center of rotation when calculating tor

Question

Hint: Use the feet of the climber as the center of rotation when calculating torque.

    N

What is the horizontal force exerted by the climber's feet?     N

What is the total vertical force exerted by the climber's hands and feet?     N

The horizontal force depends on the distance of the climber's center of gravity from the wall. What should that distance be if the climber wants to reduce the required horizontal force from hands by 50%? (Use DNE if no solution is possible.)    m

What should the distance of center of gravity from the wall be if the climber wants to reduce the vertical force of her hands and feet by 50%? (Use DNE if no solution is possible.)

Explanation / Answer

net torque about the feet = 0

torque due to weight = T1 = W*x = +50.5*9.8*0.46 = 227.654 Nm

torque due horizantal force = T2 = F*y= Fx*1.51

in equilibrium T2 = T1

Fx = 150.76 N

--------------------

Fx = -150.76 N

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Fv + Fg = 0

Fg = -w

Fv = W = 494.9 N

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if Fx1 = 150.76/2

W*x1 = Fx1*y

W = 0.229 m <<<--------------answer

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DNE

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