6. Calculate the energy in the form of heat (in kJ) required to change 76.9 g of liquid water at 25.2 °C to ice at -15.2 °C. Assume that no energy in the form of heat is transferred to the environment. (Heat of fusion = 333 J/g; heat of vaporization - 2256 J/g; specific heat capacities: ice – 2.06 J/g-K, liquid water – 4.184 J/g-K)

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Chapter4: Energy And Chemical Reactions
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6. Calculate the energy in the form of heat (in kJ) required to change 76.9 g of liquid water at 25.2 °C
to ice at –15.2 °C. Assume that no energy in the form of heat is transferred to the environment.
(Heat of fusion = 333 J/g; heat of vaporization = 2256 J/g; specific heat capacities: ice = 2.06
J/g-K, liquid water = 4.184 J/g-K)
%3D
Transcribed Image Text:6. Calculate the energy in the form of heat (in kJ) required to change 76.9 g of liquid water at 25.2 °C to ice at –15.2 °C. Assume that no energy in the form of heat is transferred to the environment. (Heat of fusion = 333 J/g; heat of vaporization = 2256 J/g; specific heat capacities: ice = 2.06 J/g-K, liquid water = 4.184 J/g-K) %3D
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