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22 January, 23:33

A block of wood floats in fresh water with 0.848 of its volume V submerged and in oil with 0.910 V submerged. Find the density of (a) the wood and (b) the oil.

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  1. 22 January, 23:55
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    (a) 848 kg/m³

    (b) 931.86 kg/m³

    Explanation:

    From Archimedes principle,

    Since the weight of the displaced water is equal to the weight of the block,

    (a)

    D₁V₁ = DV ... Equation 1

    Making D The subject of the equation above,

    D = D₁V₁/V ... Equation 2

    Where D₁ = density of water, V₁ = submerged volume in water, D = Density of block, V = volume of block.

    But, V₁ = 0.848V, and D = 1000 kg/m³

    Substituting these values into equation 2

    D₁ = 1000*0.848V/V

    D₁ = 848 kg/m³

    The Density of block = 848 kg/m³

    (b)

    Also, From Archimedes principle

    DV = D₃V₃ ... Equation 3

    Making D₃ the subject of the equation,

    D₃ = DV/V₃

    where D₃ = density of oil, V₃ = volume of oil,

    Given: V₃ = 0.910V, D = 848 kg/m³.

    Substituting these values into equation 3

    D₃ = 848V/0.910V

    D³ = 931.86 kg/m³

    Therefore the Density of oil = 931.86 kg/m³
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