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A 0.43 kg football traveling at a speed of 18.0 m/s is caught and brought to rest by the receiver in 0.052 s. What is the magnitude of the force that was applied to the football?0.402 N41.7 N149 N2680 N

User Nosrama
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1 Answer

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We are asked to determine the force exerted on a football when it is brought to rest in seconds. To do that we will use the formula for impulse:


I=p_2-p_1

Where:


\begin{gathered} I=\text{ impulse} \\ p_2,p_1=\text{ final and initial momentum} \end{gathered}

Since the ball is brought to rest this means that the final momentum is 0:


I=-p_1

the formula for impulse is given by:


I=Ft

Subsituting in the formula:


Ft=-p_2

The momentum is given by:


p_2=-mv_0

Where:


\begin{gathered} m=\text{ mass} \\ v_0=\text{ initial velocity} \end{gathered}

Substituting:


\begin{gathered} Ft=-(-mv_0) \\ Ft=mv_0 \end{gathered}

Now, we divide both sides by the time:


F=(mv_0)/(t)

Now, we plug in the values:


F=((0.43kg)(18(m)/(s)))/(0.052s)

Solving the operations:


F=149N

Therefore, the force exerted was 149N.

User Jaqueline
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