If a spring has a constant of #7 (kg)/s^2#, how much work will it take to extend the spring by #22 cm #?

1 Answer
Al E.
Apr 30, 2018

Given,

#k = (7"N")/"s"#

#Deltax = 0.22"m"#

Recall how external force is related to these variables,

#F_"ext" = kx#

, and let's use the average force in determining the work done over displacement #Deltax#, such that,

#W_"ext" = barFDeltax = (1/2kx)*x = 1/2kx^2#

This is familiar to elastic potential energy, which we are essentially working against in the positive direction. Hence, the work required to do this is,

#W_"ext" = 1/2kx^2 approx 0.17"J"#

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