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22 March, 06:45

Calculate the enthalpy change (in joules) involved in converting 5.00 grams of water at 14.0 °c to steam at 115 °c under a constant pressure of 1 atm. the specific heats of ice, liquid water, and steam are, respectively, 2.03, 4.18, 1.84 j/g-k, and for water δhfusion = 6.01 kj/mole and δhvap = 40.67 kj/mole. hints

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  1. 22 March, 07:10
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    Enthalpy change is the term given to the concentration of the heat absorbed or evolved in a reaction carried out at a constant pressure. It is given by the symbol ΔH.

    Enthalpy change = m (Cwater * dT + Hvap + Csteam * dT

    dHvap = 40.67 kJ/mol = 40.67 * 103/18 = 2259.4 J/g

    Enthalpy change = 5.00 [4.18 * (100-14) + 2259.4 + 1.84 * (115-100) ]

    = 13232.4 J
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