If the length of a $23 c m$ $23 cm$ spring increases to $82 c m$ $82 cm$ when a $5 k g$ $5 kg$ weight is hanging from it, what is the spring's constant?

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If the length of a $23 c m$ $23 cm$ spring increases to $82 c m$ $82 cm$ when a $5 k g$ $5 kg$ weight is hanging from it, what is the spring's constant?

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Answer 1 · 2017-01-17T08:06:33

I got $k = 83 \frac{N}{m}$ $k=83N/m$

Explanation:

In this type of problems you need to use Hooke's !aw and Newton's second law:
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We can write:
$- k x - m g = 0$ $-kx-mg=0$
But the elongation (in meters), according to our coordinate system, is negative so we get:
$- k (- 0.59) - (5 \cdot 9.81) = 0$ $-k(-0.59)-(5*9.81)=0$
$k = \frac{5 \cdot 9.81}{0.59} = 83 \frac{N}{m}$ $k=(5*9.81)/(0.59)=83N/m$

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If the length of a $23 c m$ $23 cm$ spring increases to $82 c m$ $82 cm$ when a $5 k g$ $5 kg$ weight is hanging from it, what is the spring's constant?

1 Answer

Explanation:

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If the length of a 23 cm23cm23 cm spring increases to 82 cm82cm82 cm when a 5 kg5kg5 kg weight is hanging from it, what is the spring's constant?

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Explanation:

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If the length of a $23 c m$ $23 cm$ spring increases to $82 c m$ $82 cm$ when a $5 k g$ $5 kg$ weight is hanging from it, what is the spring's constant?