
Concept explainers
a)
The temperature of the saturated steam
a)

Answer to Problem 85P
The temperature of the saturated steam
Explanation of Solution
Write expression for the mass balance on the chamber.
Here, mass rate of liquid water at state 1 is
Conclusion:
Refer to Table A-4, “Saturated water-temperature table”, obtain the following properties at the temperature of
Here, enthalpy of saturated liquid is
Refer to Table A-4, “Saturated water-temperature table”, obtain the following properties at the temperature of
Substitute
Refer to Table A-4, “saturated water–temperature table”, for the enthalpy of
Enthalpy |
Temperature, |
2713.1 | 125 |
2719 | ? |
2720.1 | 130 |
Here, temperature of the saturated steam at state 2 is
Substitute
Thus, the temperature of the saturated steam
b)
The exergy destruction
b)

Answer to Problem 85P
The exergy destruction
Explanation of Solution
Calculate the specific exergy of state 2
Here, dead state temperature is
Calculate the specific exergy of state 3
Calculate the specific exergy of state 1
Calculate the exergy destruction
Conclusion:
Refer to Table A-4, “saturated water–temperature table”, for the enthalpy of
Temperature, |
Entropy |
125 | 7.0771 |
129.2 | ? |
130 | 7.0265 |
Substitute
Substitute
Substitute
Substitute
Substitute
Thus, the exergy destruction
c)
The second law efficiency
c)

Answer to Problem 85P
The second law efficiency
Explanation of Solution
Write the expression for the second law efficiency
Here, rate of exergy recovered is
Conclusion:
Substitute
Thus, the second law efficiency
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Chapter 8 Solutions
EBK THERMODYNAMICS: AN ENGINEERING APPR
- A gas mixture with a molar analysis of 40% CH4 (methane) and 60% air enters a control volume operating at steady state at location 1 with a mass flow rate of 5 kg/min, as shown in the figure below. Air enters as a separate stream at 2 and dilutes the mixture. A single stream exits with a mole fraction of methane of 5%. Assume air has a molar analysis of 21% O2 and 79% N2. (CH4, Air) m₁ = = 5 kg/min Air (21% O2, 79% N₂) 3 + (5% CH4, 95% Air)arrow_forwardA gas mixture with a molar analysis of 40% CH4 (methane) and 60% air enters a control volume operating at steady state at location 1 with a mass flow rate of 5 kg/min, as shown in the figure below. Air enters as a separate stream at 2 and dilutes the mixture. A single stream exits with a mole fraction of methane of 5%. Assume air has a molar analysis of 21% O2 and 79% N2. (CH4, Air) m₁ = = 5 kg/min Air (21% O2, 79% N₂) 3 + (5% CH4, 95% Air)arrow_forwardArgon (Ar), at T₁ = 350 K, 1 bar with a mass flow rate of m₁ 3 kg/s enters the insulated mixing chamber shown in the figure below and mixes with carbon dioxide (CO2) entering as a separate stream at 575 K, 1 bar with a mass flow rate of 0.5 kg/s. The mixture exits at 1 bar. Assume ideal gas behavior with k = 1.67 for Ar and k = 1.25 for CO2. Argon (Ar) P₁ = 1 bar mT For steady-state operation, determine: (a) the molar analysis of the exiting mixture. (b) the temperature of the exiting mixture, in K. (c) the rate of entropy production, in kW/K. Insulation 3 + Mixture exiting P3 = 1 bar 2+ Carbon dioxide (CO2) T₂ = 575 K P2 = 1 bar m2 = 0.5 kg/sarrow_forward
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