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work of 4 joules is done in stretching a spring from its natural length to 11 cm beyond its natural length. what is the force (in newtons) that holds the spring stretched at the same distance (11 cm)
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work of 4 joules is done in stretching a spring from its natural length to 11 cm beyond its natural length. what is the force (in newtons) that holds the spring stretched at the same distance (11 cm)

User Guiwhatsthat
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1 Answer

5 votes

The work performed on the spring is

W = 1/2 k x²

so that

4 J = 1/2 k (0.11 m)² ⇒ k ≈ 660 N/m

Then by Hooke's law, the force required to hold the spring in this position is

F = k x = (660 N/m) (0.11 m) ≈ 73 N

User Shahjahan Ravjee
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6.1k points
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