Asked by bob
The molar heat capacity of C6H6(ℓ) is 136 J/mol ·◦C and of C6H6(g) is 81.6 J/mol · ◦C.
The molar heat of fusion for benzene is 9.92 kJ/mol and its molar heat of vaporization is
30.8 kJ/mol. The melting point of benzene is 5.5 ◦C, its boiling point is 80.1 ◦C, and its
molecular weight 78.0 g/mol. How much heat would be required to convert 624 g of solid
benzene (C6H6(s)) at 5.5 ◦C into benzene vapor (C6H6(g)) at 100.0 ◦C?
The molar heat of fusion for benzene is 9.92 kJ/mol and its molar heat of vaporization is
30.8 kJ/mol. The melting point of benzene is 5.5 ◦C, its boiling point is 80.1 ◦C, and its
molecular weight 78.0 g/mol. How much heat would be required to convert 624 g of solid
benzene (C6H6(s)) at 5.5 ◦C into benzene vapor (C6H6(g)) at 100.0 ◦C?
Answers
Answered by
DrBob222
You do all of the problems the same way.
First, since the heat capacity is listed in J/mol or kJ/mol, convert 624 g benzene to moles. mol = grams/molar mass.Then
within a phase, q is
mass x specific heat in that phase x (Tfinal-Tinitial).
Converting a phase (solid to liquid or reverse, liquid to vapor or reverse), q is
mass x heat fusion at melting point or
mass x heat vaporization at boiling point.
Then add all of the qs together.
First, since the heat capacity is listed in J/mol or kJ/mol, convert 624 g benzene to moles. mol = grams/molar mass.Then
within a phase, q is
mass x specific heat in that phase x (Tfinal-Tinitial).
Converting a phase (solid to liquid or reverse, liquid to vapor or reverse), q is
mass x heat fusion at melting point or
mass x heat vaporization at boiling point.
Then add all of the qs together.
Answered by
Anonymous
what is the answer
Answered by
responding to anonymous
bruh just do the math for the ut quest
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