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A block of mass 0.408 kg is hung from a vertical spring and allowed to reach equilibrium at rest. As a result, the spring is stretched by 0.606 m. Find the spring constant.
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A block of mass 0.408 kg is hung from a vertical spring and allowed to reach equilibrium at rest. As a result, the spring is stretched by 0.606 m. Find the spring constant.

User Saurin Dashadia
by
2.8k points

1 Answer

3 votes

Answer:

6.598 N/m

Step-by-step explanation:

We are given that

Mass of block=0.408 kg

Displacement=x=0.606 m

We have to find the value of spring constant.

We know that

F=kx

Using the formula


(0.408)g=k(0.606)

g=
9.8m/s^2

Using the value of g


k=(0.408* 9.8)/(0.606)=6.598N/m

Hence, the spring constant=6.598 N/m

User Sabiland
by
3.1k points
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