Answer to Question #147186 in Physics for rrrr

Question #147186

A 1.37 kg rock is suspended from a spring that is stretched 0.880 m. What is the spring constant for this spring?

Expert's answer

By the Hooke's Law, we have:

"F=kx,"

here, "F=mg" is the force that acts on the spring, "k" is the spring constant, "x" is the elongation of the sping.

Then, from this formula we can find the spring constant:

"mg=kx,""k=\\dfrac{mg}{x}=\\dfrac{1.37\\ kg\\cdot 9.8\\ \\dfrac{m}{s^2}}{0.880\\ m}=15.26\\ \\dfrac{N}{m}."

Answer:

"k=15.26\\ \\dfrac{N}{m}."

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