The change in heat is simply equal to:
change in heat ΔH = final enthalpy – initial enthalpy
ΔH = [280.25 g * 4.18J/gC * (17.5°C)] – [280 g * 4.18J/gC * 13.5°C]
ΔH = 4,699.89 J = 4.7 kJ
Hence heat released is about 4.7 kJ
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