Respuesta :
Explanation:
For the given reaction, the temperature of liquid will rise from 298 K to 339 K. Hence, heat energy required will be calculated as follows.
[tex]Q_{1} = mC_{1} \Delta T_{1}[/tex]
Putting the given values into the above equation as follows.
[tex]Q_{1} = mC_{1} \Delta T_{1}[/tex]
= [tex]27.3 g \times 1.70 J/g K \times 41[/tex]
= 1902.81 J
Now, conversion of liquid to vapor at the boiling point (339 K) is calculated as follows.
[tex]Q_{2}[/tex] = energy required = [tex]mL_{v}[/tex]
[tex]L_{v}[/tex] = latent heat of vaporization
Therefor, calculate the value of energy required as follows.
[tex]Q_{2}[/tex] = [tex]mL_{v}[/tex]
= [tex]27.3 \times 444[/tex]
= 12121.2 J
Therefore, rise in temperature of vapor from 339 K to 373 K is calculated as follows.
[tex]Q_{3} = mC_{2} \Delta T_{2}[/tex]
Value of [tex]C_{2}[/tex] = 1.06 J/g, [tex]\Delta T_{2}[/tex] = (373 -339) K = 34 K
Hence, putting the given values into the above formula as follows.
[tex]Q_{3} = mC_{2} \Delta T_{2}[/tex]
= [tex]27.3 g \times 1.06 J/g \times 34 K[/tex]
= 983.892 J
Therefore, net heat required will be calculated as follows.
Q = [tex]Q_{1} + Q_{2} + Q_{3}[/tex]
= 1902.81 J + 12121.2 J + 983.892 J
= 15007.902 J
Thus, we can conclude that total energy (q) required to convert 27.3 g of THF at 298 K to a vapor at 373 K is 15007.902 J.
