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3 September, 09:02

You are given four springs, one each of 3.5 , 6 , 8.5 , and 11 newtons per meter [N/m]. How do I find the smallest equivalent stiffness that can be made using only three of these springs?

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  1. 3 September, 09:15
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    You have two possible ways to connect the springs: in parallel or in series.

    The equivalent stiffness of three springs in parallel is given by:

    k_eq = k₁ + k₂ + k₃

    In order to keep this number the smallest possible, you need to take the three springs with smaller k:

    k_eq_min = 3.5 + 6 + 8.5 = 18 N/m

    The equivalent stiffness of three springs in series is given by:

    1 / k_eq = 1 / k₁ + 1 / k₂ + 1 / k₃

    In order to get the smallest k_eq possible, 1 / k_eq must be the biggest possible, therefore you need to take again the three springs with smaller k:

    k_eq = 1 / (1 / k₁ + 1 / k₂ + 1 / k₃)

    = 1 / (1 / 3.5 + 1 / 6 + 1 / 8.5)

    = 1.754 N/m

    Therefore, in order to get the smallest equivalent stiffness, you need to connect the first three springs in series (one after the other).
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