nge. Given the following information for ethanol, C2H3OH (at 1 atm), calculate the amount of heat in kJ needed (at 1 atm) to vaporize a 42.3-g sample of liquid ethanol at its normal boiling point of 78.4 °C. boiling point =78.4 °C melting point = -115 °C specific heat liquid 2.46 J/g°C kJ AHvap(78.4 °C) = 38.6 kJ/mol AHfus(-115 °C) = 5.02 k)/mol

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Chapter5: Thermochemistry
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Problem 5.51QE: The enthalpy change when 1 mol methane (CH4) is burned is 890 kJ. It takes 44.0 kJ to vaporize 1 mol...
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Calculate the energy change during a phase change.
Given the following information for ethanol, C,H3OH (at 1 atm), calculate the amount of heat in kJ needed (at 1 atm) to
vaporize a 42.3-g sample of liquid ethanol at its normal boiling point of 78.4 °C.
AHvap(78.4 °C) = 38.6 kJ/mol
AHfus(-115 °C) = 5.02 kJ/mol
boiling point = 78.4 °C
melting point = -115 °C
specific heat liquid = 2.46 J/g°C
kJ
Transcribed Image Text:Calculate the energy change during a phase change. Given the following information for ethanol, C,H3OH (at 1 atm), calculate the amount of heat in kJ needed (at 1 atm) to vaporize a 42.3-g sample of liquid ethanol at its normal boiling point of 78.4 °C. AHvap(78.4 °C) = 38.6 kJ/mol AHfus(-115 °C) = 5.02 kJ/mol boiling point = 78.4 °C melting point = -115 °C specific heat liquid = 2.46 J/g°C kJ
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