Login or Sign Up

Ask a New Question

a horizontal force of 12n is used to pu;; a 24kg block at constant veocity on a horizontal floor. what is the cofficient of friction ?

12 = mu * 24g

Similar Questions

A wooden block of weight 24N lies on a horizontal table,when a force of 12N was applied to the block,it takes the block to "just

Top answer: 12N/24N = 0.50 Read more.
A dockworker applies a constant horizontal force of 73.0N to a block of ice on a smooth horizontal floor. The frictional force

Top answer: a. d = Vo*t + 0.5a*t^2 = 11.5 m. 0 + 0.5a*5.4^2 = 11.5 14.58a = 11.5 a = 0.789 m/s^2 m = F/a = Read more.
A steel block weighing 12N is pulled up an incline plane 20° above the horizontal by a constant force of 7.35 N which makes an

Top answer: Fp = 12*sin20 = 4.1 N. = Force parallel with incline, Fn = 12*Cos20 - 7.35*sin10 = 10 N. = Normal Read more.
A steel block weighing 12N is pulled up an incline plane 20° above the horizontal by a constant force of 7.35 N which makes an

Top answer: (a) The work done on the steel block is given by the product of the force applied and the Read more.
A 20kg block is initially at rest on a rough, horizontal surface. A horizontal force of 75N is required to set the block in

Top answer: weight = m g friction force = mu m g so static mus 75 = mus (20)(9.81) and kinetic muk 60 = muk Read more.
A dockworker applies a constant horizontal force of 79.0 N to a block of ice on a smooth horizontal floor. The frictional force

Top answer: F=ma 79=m*a but you can find a from d=1/2 a t^2, you are given d, and t. Read more.
A dockworker applies a constant horizontal force of 79.0 N to a block of ice on a smooth horizontal floor. The frictional force

Top answer: Use the statement " The block starts from rest and moves a distance 13.0 m in a time 4.50 s. " to Read more.
A dock worker applies a constant horizontal force of 79.0 N to a block of ice on a smooth horizontal floor. The frictional force

Top answer: 189.5 Read more.
A dock worker applies a constant horizontal force of 80.0N to a block of ice on a smooth horizontal floor. The frictional force

Top answer: d = (1/2) a t^2 10 = (1/2)a (36) a = 20/36 then F = m a 80 = m (20/36) so m = 36 * 80 / 20 Read more.
A dock worker applies a constant horizontal force of 80.0N to a block of ice on a smooth horizontal floor. The frictional force

Top answer: Calculate a from S=ut + at<sup>2</sup>/2 where S=11 m u=0 t=5 s From F=ma where F=80 N a= as Read more.