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3 November, 03:17

An unknown substance has a mass of 0.125 kg and an initial temperature of 90.5°C. The substance is then dropped into a calorimeter made of aluminum containing 0.285 kg of water initially at 29.5°C. The mass of the aluminum container is 0.150 kg, and the temperature of the calorimeter increases to a final equilibrium temperature of 32.0°C. Assuming no thermal energy is transferred to the environment, calculate the specific heat of the unknown substance.

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  1. 3 November, 05:49
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    The specific heat capacity of the substance = 455.38 J/kgK

    Explanation:

    Heat lost by the substance = Heat gained by water + heat gained by the aluminum calorimeter

    Qs = Qw + Qc ... equation 1

    Where Qs = heat lost by the substance, Qw = heat gain by water, Qc = heat gain by the aluminum calorimeter.

    Qs = c₁m₁ (T₁-T₃) ... equation 2

    Qw = c₂m₂ (T₃-T₂) ... equation 3

    Qc = c₃m₃ (T₃-T₂) ... equation 4

    Where c₁ = specific heat capacity of the substance, m₁ = mass of the substance, c₂ = specific heat capacity of water, m₂ = mass of water, c₃ = specific heat capacity of aluminium, m₃ = mass of the aluminum container, T₁ = Initial Temperature of the substance, T₂ = initial temperature of water, T₃ = Final equilibrium temperature.

    Substituting equation 2, 3, 4 into equation 1

    c₁m₁ (T₁-T₃) = c₂m₂ (T₃-T₂) + c₃m₃ (T₃-T₂) ... equation 5

    Making c₁ the subject of equation 5

    c₁ = {c₂m₂ (T₃-T₂) + c₃m₃ (T₃-T₂) }/m₁ (T₁-T₃) ... equation 6

    Where c₂ = 4200 J/kgK, m₂ = 0.285 kg, m₁ = 0.125 kg, c₃ = 900 J/kgK, m₃ = 0.150 kg, T₁ = 90.5°C, T₂ = 29.5°C, T₃ = 32.0°C

    Substituting these values into Equation 6,

    c₁ = {4200*0.285 (32-29.5) + 900*0.150 (32-29.5) }/0.125 (90.5-32)

    c₁ = {1197 (2.5) + 135 (2.5) }/7.3125

    c₁ = {2992.5 + 337.5}/7.3125

    c₁ = 3330/7.3125

    c₁ = 455.38 J/kgK.

    Therefore the specific heat capacity of the substance = 455.38 J/kgK
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