A spring with a constant of $7 (kg)/s^2$ is lying on the ground with one end attached to a wall. An object with a mass of $3 kg$ and speed of $1 m/s$ collides with and compresses the spring until it stops moving. How much will the spring compress?

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A spring with a constant of $7 (kg)/s^2$ is lying on the ground with one end attached to a wall. An object with a mass of $3 kg$ and speed of $1 m/s$ collides with and compresses the spring until it stops moving. How much will the spring compress?

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Answer 1 · 2016-03-27T15:58:21

By conservation of mechanical energy when the spring is compressed x m after collision
PE gained by the spring = Initial KE of the colliding object
$=>cancel (1/2)kx^2=cancel(1/2)mv^2$
where
m = mass=3kg
v=velocity of the object= $1m/s$
k = force constant= $7(kg)/s^2$
x= compression of spring=?
$=>x^2=mv^2/k$
$=>x=sqrt(m/kv^2)=sqrt(m/k)xxv=sqrt(((3kg))/(7kg)/s^2)xx1m/s=0.65m$

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A spring with a constant of $7 (kg)/s^2$ is lying on the ground with one end attached to a wall. An object with a mass of $3 kg$ and speed of $1 m/s$ collides with and compresses the spring until it stops moving. How much will the spring compress?

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A spring with a constant of $7 (kg)/s^2$ is lying on the ground with one end attached to a wall. An object with a mass of $3 kg$ and speed of $1 m/s$ collides with and compresses the spring until it stops moving. How much will the spring compress?