Stud Previous Page 27 of 36 E Next O References Use the References to access important values if needed for this question. Calculate the enthalpy of vaporization of C4H10- This compound has vapor pressures of 492 mmHg and 355 mmHg at -12.0 °C and -20.0 °C, respectively. (R = 8.314 J/mol-K) 20741Vemel USsigiment-take CHAPTER 7 - GASES, LIQUIDS, AND SOLIDS Study Previous Page 28 of 36 E Next The normal boiling point of bromine is 58.8 °. Using the heat of vaporization of bromine (30.0 kJ/mol), calculate the vapor pressure of bromine at 14.5 °C. (R = 8.314 J/mol-K) 405 torr

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References
Use the References to access important values if needed for this question.
Calculate the enthalpy of vaporization of C4H10- This compound has vapor pressures of 492 mmHg and 355 mmHg at -12.0 °C and -20.0 °C, respectively. (R = 8.314 J/mol-K)
20741Vemel
Transcribed Image Text:Stud Previous Page 27 of 36 E Next O References Use the References to access important values if needed for this question. Calculate the enthalpy of vaporization of C4H10- This compound has vapor pressures of 492 mmHg and 355 mmHg at -12.0 °C and -20.0 °C, respectively. (R = 8.314 J/mol-K) 20741Vemel
USsigiment-take
CHAPTER 7 - GASES, LIQUIDS, AND SOLIDS
Study
Previous Page 28 of 36 E Next
The normal boiling point of bromine is 58.8 °. Using the heat of vaporization of bromine (30.0 kJ/mol), calculate the vapor pressure of bromine at 14.5 °C. (R = 8.314 J/mol-K)
405 torr
Transcribed Image Text:USsigiment-take CHAPTER 7 - GASES, LIQUIDS, AND SOLIDS Study Previous Page 28 of 36 E Next The normal boiling point of bromine is 58.8 °. Using the heat of vaporization of bromine (30.0 kJ/mol), calculate the vapor pressure of bromine at 14.5 °C. (R = 8.314 J/mol-K) 405 torr
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