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A busboy uses a 15N force to push a 25kg cart at constant speed. If the waiter is pushing down at a 37 degree angle, find the normal force and friction

User Esteban Vallejo
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1 Answer

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ANSWER


\begin{gathered} N=245N \\ Fr\approx11.98N \end{gathered}

Step-by-step explanation

First, let us make a sketch of the problem:

The normal force has the same magnitude as the weight of the cart.


N=mg

where m = mass; g = acceleration due to gravity

Hence, the normal force is:


\begin{gathered} N=25\cdot9.8 \\ N=245N \end{gathered}

Applying Newton's second law of motion in the horizontal direction, the sum of forces acting on the cart is:


\sum F_x=ma_x=-Fr+Fp\cos 37_{}

where Fp = force of the push

Fr = friction force

Since the waiter pushes the cart at a constant speed, it means that the acceleration of the cart (ax) is 0.

This implies that:


0=-Fr+15\cos 37

Solve for Fr:


\begin{gathered} \Rightarrow Fr=15\cos 37 \\ \Rightarrow Fr\approx11.98N \end{gathered}

That is the friction force.

A busboy uses a 15N force to push a 25kg cart at constant speed. If the waiter is-example-1
User Denis Steinman
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