Gas Mixtures-Gas Dynamics Fluid Dynamics
- 1. Chapter 13 Gas Mixtures Study Guide in PowerPoint to accompany Thermodynamics: An Engineering Approach, 5th edition by Yunus A. Çengel and Michael A. Boles
- 2. 2 The discussions in this chapter are restricted to nonreactive ideal-gas mixtures. Those interested in real-gas mixtures are encouraged to study carefully the material presented in Chapter 12. Many thermodynamic applications involve mixtures of ideal gases. That is, each of the gases in the mixture individually behaves as an ideal gas. In this section, we assume that the gases in the mixture do not react with one another to any significant degree. We restrict ourselves to a study of only ideal-gas mixtures. An ideal gas is one in which the equation of state is given by PV mRT or PV NR T u Air is an example of an ideal gas mixture and has the following approximate composition. Component % by Volume N2 78.10 O2 20.95 Argon 0.92 CO2 + trace elements 0.03
- 3. 3 Definitions Consider a container having a volume V that is filled with a mixture of k different gases at a pressure P and a temperature T. A mixture of two or more gases of fixed chemical composition is called a nonreacting gas mixture. Consider k gases in a rigid container as shown here. The properties of the mixture may be based on the mass of each component, called gravimetric analysis, or on the moles of each component, called molar analysis. k gases T = Tm V = Vm P = Pm m = mm The total mass of the mixture mm and the total moles of mixture Nm are defined as m m N N m i i k m i i k 1 1 and
- 4. 4 mf m m y N N i i m i i m and mf y i i k i i k 1 1 1 = 1 and Note that The composition of a gas mixture is described by specifying either the mass fraction mfi or the mole fraction yi of each component i. The mass and mole number for a given component are related through the molar mass (or molecular weight). m N M i i i To find the average molar mass for the mixture Mm , note m m N M N M m i i k i i m m i k 1 1 Solving for the average or apparent molar mass Mm M m N N N M y M kg kmol m m m i m i i k i i i k 1 1 ( / )
- 5. 5 The apparent (or average) gas constant of a mixture is expressed as R R M kJ kg K m u m ( / ) Can you show that Rm is given as R mf R m i i i k 1 To change from a mole fraction analysis to a mass fraction analysis, we can show that mf y M y M i i i i i i k 1 To change from a mass fraction analysis to a mole fraction analysis, we can show that y mf M mf M i i i i i i k / / 1
- 6. 6 Volume fraction (Amagat model) Divide the container into k subcontainers, such that each subcontainer has only one of the gases in the mixture at the original mixture temperature and pressure. Amagat's law of additive vol umes states that the volume of a gas mixture is equal to the sum of the volumes each gas would occupy if it existed alone at the mixture temperature and pressure. Amagat's law: V V T P m i m m i k ( , ) 1 The volume fraction of the vfi of any component is vf V T P V i i m m m ( , ) and vfi i k 1 = 1
- 7. 7 For an ideal gas mixture V N R T P and V N R T P i i u m m m m u m m Taking the ratio of these two equations gives vf V V N N y i i m i m i The volume fraction and the mole fraction of a component in an ideal gas mixture are the same. Partial pressure (Dalton model) The partial pressure of component i is defined as the product of the mole fraction and the mixture pressure according to Dalton’s law. For the component i P y P i i m Dalton’s law: P P T V m i m m i k ( , ) 1
- 8. 8 Now, consider placing each of the k gases in a separate container having the volume of the mixture at the temperature of the mixture. The pressure that results is called the component pressure, Pi' . P N R T V and P N R T V i i u m m m m u m m ' Note that the ratio of Pi' to Pm is P P V V N N y i m i m i m i ' For ideal-gas mixtures, the partial pressure and the component pressure are the same and are equal to the product of the mole fraction and the mixture pressure.
- 9. 9 Other properties of ideal-gas mixtures The extensive properties of a gas mixture, in general, can be determined by summing the contributions of each component of the mixture. The evalu ation of intensive properties of a gas mixture, however, involves averaging in terms of mass or mole fractions: U U m u N u H H m h N h S S m s N s m i i k i i i k i i i k m i i k i i i k i i i k m i i k i i i k i i i k 1 1 1 1 1 1 1 1 1 (kJ) (kJ) (kJ / K) and u mf u u y u h mf h h y h s mf s s y s m i i i k m i i i k m i i i k m i i i k m i i i k m i i i k 1 1 1 1 1 1 and (kJ / kg or kJ / kmol) and (kJ / kg or kJ / kmol) and (kJ / kg K or kJ / kmol K) C mf C C y C C mf C C y C v m i v i i k v m i v i i k p m i p i i k p m i p i i k , , , , , , , , 1 1 1 1 and and
- 10. 10 These relations are applicable to both ideal- and real-gas mixtures. The properties or property changes of individual components can be determined by using ideal-gas or real-gas relations developed in earlier chapters. Ratio of specific heats k is given as k C C C C m p m v m p m v m , , , , The entropy of a mixture of ideal gases is equal to the sum of the entropies of the component gases as they exist in the mixture. We employ the Gibbs-Dalton law that says each gas behaves as if it alone occupies the volume of the system at the mixture temperature. That is, the pressure of each component is the partial pressure. For constant specific heats, the entropy change of any component is
- 11. 11 The entropy change of the mixture per mass of mixture is The entropy change of the mixture per mole of mixture is
- 12. 12 In these last two equations, recall that P y P P y P i i m i i m , , , , , , 1 1 1 2 2 2 Example 13-1 An ideal-gas mixture has the following volumetric analysis Component % by Volume N2 60 CO2 40 (a)Find the analysis on a mass basis. For ideal-gas mixtures, the percent by volume is the volume fraction. Recall y vf i i
- 13. 13 Comp. yi Mi yiMi mfi = yiMi /Mm kg/kmol kg/kmol kgi/kgm N2 0.60 28 16.8 0.488 CO2 0.40 44 17.6 0.512 Mm = yiMi = 34.4 (b) What is the mass of 1 m3 of this gas when P = 1.5 MPa and T = 30o C? R R M kJ kg K kJ kmol K kg kmol kJ kg K m u m ( / ) . . . 8 314 34 4 0 242 m P V R T MPa m kJ kg K K kJ m MPa kg m m m m m 15 1 0 242 30 273 10 20 45 3 3 3 . ( ) ( . / ( ))( ) .
- 14. 14 (c) Find the specific heats at 300 K. Using Table A-2, Cp N2 = 1.039 kJ/kgK and Cp CO2 = 0.846 kJ/kgK C mf C kJ kg K p m i p i m , , ( . )( . ) ( . )( . ) . 1 2 0 488 1039 0512 0846 0 940 C C R kJ kg K kJ kg K v m p m m m m , , ( . . ) . 0 940 0 242 0 698
- 15. 15 (d) This gas is heated in a steady-flow process such that the temperature is increased by 120o C. Find the required heat transfer. The conservation of mass and energy for steady-flow are ( ) ( ) , m m m m h Q m h Q m h h mC T T in in p m 1 2 1 1 2 2 2 1 2 1 The heat transfer per unit mass flow is q Q m C T T kJ kg K K kJ kg in in p m m m ( ) . ( ) . , 2 1 0 940 120 112 8
- 16. 16 (e) This mixture undergoes an isentropic process from 0.1 MPa, 30o C, to 0.2 MPa. Find T2. The ratio of specific heats for the mixture is k C C p m v m , , . . . 0 940 0 698 1347 Assuming constant properties for the isentropic process (f) Find Sm per kg of mixture when the mixture is compressed isothermally from 0.1 MPa to 0.2 MPa.
- 17. 17 But, the compression process is isothermal, T2 = T1. The partial pressures are given by P y P i i m The entropy change becomes For this problem the components are already mixed before the compression process. So, y y i i , , 2 1 Then,
- 18. 18 s mf s kg kg kJ kg K kg kg kJ kg K kJ kg K m i i i N m N CO m CO m 1 2 0 488 0 206 0512 0131 0167 2 2 2 2 ( . )( . ) ( . )( . ) . Why is sm negative for this problem? Find the entropy change using the average specific heats of the mixture. Is your result the same as that above? Should it be? (g) Both the N2 and CO2 are supplied in separate lines at 0.2 MPa and 300 K to a mixing chamber and are mixed adiabatically. The resulting mixture has the composition as given in part (a). Determine the entropy change due to the mixing process per unit mass of mixture.
- 19. 19 Take the time to apply the steady-flow conservation of energy and mass to show that the temperature of the mixture at state 3 is 300 K. But the mixing process is isothermal, T3 = T2 = T1. The partial pressures are given by P y P i i m The entropy change becomes
- 20. 20 But here the components are not mixed initially. So, y y N CO 2 2 1 2 1 1 , , and in the mixture state 3, y y N CO 2 2 3 3 0 6 0 4 , , . . Then,
- 21. 21 Then, s mf s kg kg kJ kg K kg kg kJ kg K kJ kg K m i i i N m N CO m CO m 1 2 0 488 0152 0512 0173 0163 2 2 2 2 ( . )( . ) ( . )( . ) . If the process is adiabatic, why did the entropy increase? Extra Assignment Nitrogen and carbon dioxide are to be mixed and allowed to flow through a convergent nozzle. The exit velocity to the nozzle is to be the speed of sound for the mixture and have a value of 500 m/s when the nozzle exit temperature of the mixture is 500o C. Determine the required mole fractions of the nitrogen and carbon dioxide to produce this mixture. From Chapter 17, the speed of sound is given by C kRT Mixture N2 and CO2 C = 500 m/s T = 500o C NOZZLE Answer: yN2 = 0.589, yCO2 = 0.411