Final answer:
The total heat evolved in converting 1.00 mol of steam at 130.0°C to ice at -55.0°C is 10.70 kJ.
Step-by-step explanation:
To calculate the heat evolved in converting 1.00 mol of steam at 130.0°C to ice at -55.0°C, we need to consider two processes: the cooling of steam to 0°C and the freezing of water at 0°C. Let's break down the calculation step by step.
Cooling of steam to 0°C:
The heat absorbed during this process can be calculated using the formula:
Q = mcΔT
where
Q is the heat absorbed (in J)
m is the mass of the substance (in g)
c is the specific heat capacity (in J/g·°C)
ΔT is the change in temperature (in °C).
We are given that the heat capacity of steam is 2.01 J/g·°C and we have 1.00 mol of steam.
The molar mass of steam is approximately 18.02 g/mol, so the mass of 1.00 mol of steam is 18.02 g.
The change in temperature is 130.0°C - 0°C = 130.0°C.
Using the formula:
Q = (18.02 g)(2.01 J/g·°C)(130.0°C - 0°C)
Q = 4691.46 J = 4.69 kJ
Freezing of water at 0°C:
The heat evolved during this process is the molar heat of fusion, which is the amount of heat required to convert 1 mol of a substance from solid to liquid or vice versa
The molar heat of fusion of water is 6.01 kJ/mol. Since we have 1.00 mol of water, the heat evolved is 6.01 kJ.
Now, we can calculate the total heat evolved:
Total heat evolved = Heat absorbed during cooling + Heat evolved during freezing
Total heat evolved = 4.69 kJ + 6.01 kJ
Total heat evolved = 10.70 kJ
So therefore the total heat evolved is 10.70 kJ