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The A-36 steel pipe has a 6061-T6 aluminum core. It issubjected to a tensile force of 200 kN. Determine the averagenormal stress in the aluminum and the steel due to thisloading. The pipe has an outer diameter of 80 mm and aninner diameter of 70mm.

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  1. 10 July, 20:02
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    In the steel: 815 kPa

    In the aluminum: 270 kPa

    Explanation:

    The steel pipe will have a section of:

    A1 = π/4 * (D^2 - d^2)

    A1 = π/4 * (0.8^2 - 0.7^2) = 0.1178 m^2

    The aluminum core:

    A2 = π/4 * d^2

    A2 = π/4 * 0.7^2 = 0.3848 m^2

    The parts will have a certain stiffness:

    k = E * A/l

    We don't know their length, so we can consider this as stiffness per unit of length

    k = E * A

    For the steel pipe:

    E = 210 GPa (for steel)

    k1 = 210*10^9 * 0.1178 = 2.47*10^10 N

    For the aluminum:

    E = 70 GPa

    k2 = 70*10^9 * 0.3848 = 2.69*10^10 N

    Hooke's law:

    Δd = f / k

    Since we are using stiffness per unit of length we use stretching per unit of length:

    ε = f / k

    When the force is distributed between both materials will stretch the same length:

    f = f1 + f2

    f1 / k1 = f2 / k2

    Replacing:

    f1 = f - f2

    (f - f2) / k1 = f2 / k2

    f/k1 - f2/k1 = f2/k2

    f/k1 = f2 * (1/k2 + 1/k1)

    f2 = (f/k1) / (1/k2 + 1/k1)

    f2 = (200000/2.47*10^10) / (1/2.69*10^10 + 1/2.47*10^10) = 104000 N = 104 KN

    f1 = 200 - 104 = 96 kN

    Then we calculate the stresses:

    σ1 = f1/A1 = 96000 / 0.1178 = 815000 Pa = 815 kPa

    σ2 = f2/A2 = 104000 / 0.3848 = 270000 Pa = 270 kPa
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