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Two equal length springs having a stiffness of : K A = 300 N/m KB =...

Two equal length springs having a stiffness of : K A = 300 N/m KB = 200 N/m Are nested together in order to form a shock absorber. If a two kilogram block is dropped from an at rest position 0.6 meters above the springs, what is the deformation of the springs when the block momentarily stops at the bottom of its path of travel ?

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Answer #1

The net stiffness of the spring is, Kmet = KA+K; = 300 N/m + 200 N/m =500 N/m From law of conservation of energy we have, mgh

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