the spring constant is 200kN/m.
The work done on the spring by the the free falling safe is equal to the kinetic energy of the spring:
W1 = [tex] \frac{1}{2} [/tex]k[tex] x^{2} [/tex]
The work done on the safe by gravity is the potential energy of the spring:
W2 = (mass of safe) x g x (height)
= 1000kg x 9.8 m/s^2 x (2 + 0.54)m
=1000kg x 9.8 m/s^2 x (2.54)m
= 24,892 N-m
W2 = W1 =24892 N-m
⇒ [tex] \frac{1}{2} [/tex]k[tex] (0.5)^{2} [/tex] = 24892 N-m
Therefore, k = [tex] \frac{(24892)*2}{0.5*0.5} [/tex]= 199136 kN/m.
The spring constant is 199,136 N/m ≈ 200 kN/m
