Simple Harmonic Motion with Spring

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getty102
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Homework Statement



A massless spring is hanging vertically. With no load on the spring, it has a length of 0.22 m. When a mass of 0.68 kg is hung on it, the equilibrium length is 0.75 m. At t=0, the mass (which is at the equilibrium point) is given a velocity of 4.88 m/s downward.
At t=046s, what is the acceleration of the mass? (Positive for upward acceleration, negative for downward)


Homework Equations



[itex]\Sigma[/itex]Fy=-k(yeq-y0)
[itex]\Sigma[/itex]Fy=may

The Attempt at a Solution



The only two forces acting on the mass are the Tension from the spring and weight. So
Tsm-(mg)=may
I am now stuck wondering if that was a good place to start. Is the traditional way to solve this problem to find the spring constant first?
 
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I have k=(mg)/(yeq-y0). I don't think this is right.
 
getty102 said:
I have k=(mg)/(yeq-y0). I don't think this is right.

Right, well you are given m, y0 and yeq and you know g. So you can get k.