The system shown is in limiting equilibrium. The coefficient of friction for all contanct surfaces is 1/4.

`20 g sin theta + f_(2) = T`
`20 g sin theta + mu(20 g cos theta) = T`
`80 g sin theta = mu(100 g cos theta) + mu (20 g cos theta)`
`tan theta = (3)/(8)`
`T = 20g sin theta + (1)/(4) xx 20 xx g xx (8)/(3) sin theta`
`= ((100)/(3) g sin theta) N`
Net friction on `80 kg =f_(1) + f_(2) = 80 g sin theta`
force on `80 kg` due to `20 kg` is
`sqrt((2 g cos theta)^(2)+(mu 20 g sin theta)^(2))`