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3 August, 18:19

force of 10 lb is required to hold a spring stretched 4 in. beyond its natural length. How much work W is done in stretching it from its natural length to 6 in. beyond its natural length?

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  1. 3 August, 18:37
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    Given force=10lb

    L1=4in converting to feet

    But 0.08333ft = 1 inch

    Then 4 inch is 0.3332

    6inch is 0.49998

    But hookes law states

    F=Kx where F is force, K is the force constant, X

    K=F/X=10/0.3333=30N/m

    Integrating this

    Integral of 30x with limit 0.333 to 0.5

    F=30x^2/2=15x^2substing the limit

    F = (15 (0.5^2-0.33^2) = 2.08ft-lb
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