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A 500 kg object is hanging from a spring attached to the ceiling. If the spring constant in the spring is 900 N/kg, how far does the spring stretch?

User Uhz
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1 Answer

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10 votes

We are given that a 500 kg object is hanging from a spring. To determine the amount the spring is stretched we will use Hook's law, which states the following:


F=kx

Where:


\begin{gathered} F=\text{ force} \\ k=\text{ spring constant} \\ x=\text{ distance stretched} \end{gathered}

Since the object is hanging the only force acting on the spring is the weight of the object. The weight of the object is:


F_g=mg

Where:


\begin{gathered} m=\text{ mass} \\ g=\text{ acceleration of gravity} \end{gathered}

Plugging in the values we get:


F_g=(500\operatorname{kg})(9.8(m)/(s^2))

Solving the operations:


F_g=4900N

Now we solve for "x" from Hook's law by dividing both sides by "k":


(F)/(k)=x

Now we plug in the known values:


(4900N)/(900(N)/(m))=x

Solving the operations:


5.4m=x

Therefore, the spring is stretched by 5.4 meters.

User Nanu
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