If a spring has a constant of #9 (kg)/s^2#, how much work will it take to extend the spring by #22 cm #?

1 Answer
Matt
Feb 29, 2016

The work done in extending the spring a distance, e, is given by the area under the force-extension graph for the spring. This equals:
#W=1/2*F*e#
for a spring that obeys Hooke's law.

The relationship between force and extension is given by #F=k*e#
If you substitute the above into the first equation you arrive at:
#W=1/2*k*e^2#
Hence:
#W= 1/2*9*0.22^2=0.22J#

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