The normal boiling point of mercury (Hg) is 356.7 °C. What is the vapor pressure of mercury at 326.0 °C in atm? (∆Hvap = 58.51 kJ/mol)   The normal boiling point of a liquid is 282 °C. At what temperature (in °C) would the vapor pressure be 0.750 atm? (∆Hvap = 28.5 kJ/mol)   What amount of heat (in kJ) is required to convert 21.7 g of an unknown liquid (MM = 83.21 g/mol) at 19.2 °C to a gas at 93.5 °C? (specific heat capacity of liquid = 1.58 J/g・°C; specific heat capacity of gas = 0.932 J/g・°C; ∆Hvap = 22.5 kJ/mol; normal boiling point, Tb = 57.3°C)

Chemistry: Principles and Practice
3rd Edition
ISBN:9780534420123
Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Publisher:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Chapter17: Chemcial Thermodynamics
Section: Chapter Questions
Problem 17.102QE
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The normal boiling point of mercury (Hg) is 356.7 °C. What is the vapor pressure of mercury at 326.0 °C in atm? (∆Hvap = 58.51 kJ/mol)

 

The normal boiling point of a liquid is 282 °C. At what temperature (in °C) would the vapor pressure be 0.750 atm? (∆Hvap = 28.5 kJ/mol)

 

What amount of heat (in kJ) is required to convert 21.7 g of an unknown liquid (MM = 83.21 g/mol) at 19.2 °C to a gas at 93.5 °C? (specific heat capacity of liquid = 1.58 J/g・°C; specific heat capacity of gas = 0.932 J/g・°C; ∆Hvap = 22.5 kJ/mol; normal boiling point, Tb = 57.3°C)

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