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ME 475/675 Introduction to Combustion

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1 ME 475/675 Introduction to Combustion
Lecture 3

2 Thermodynamic Systems (reactors)
m, E 1 𝑄 2 1 π‘Š 2 Dm=DE=0 Inlet i Outlet o 𝑄 𝐢𝑉 π‘š 𝑖 𝑒+𝑃𝑣 𝑖 π‘š 0 𝑒+𝑃𝑣 π‘œ π‘Š 𝐢𝑉 Closed systems 1 𝑄 2 βˆ’ 1 π‘Š 2 =π‘š 𝑒 2 βˆ’ 𝑒 𝑣 βˆ’ 𝑣 𝑔 𝑧 2 βˆ’ 𝑧 1 Open Steady State, Steady Flow (SSSF) Systems 𝑄 𝐢𝑉 βˆ’ π‘Š 𝐢𝑉 = π‘š β„Ž π‘œ βˆ’ β„Ž 𝑖 + 𝑣 π‘œ 2 2 βˆ’ 𝑣 𝑖 𝑔 𝑧 π‘œ βˆ’ 𝑧 𝑖 How to find changes, 𝑒 2 βˆ’ 𝑒 1 and β„Ž π‘œ βˆ’ β„Ž 𝑖 , for mixtures when temperatures and composition change due to reactions (not covered in Thermodynamics I)

3 Calorific Equations of State for a pure substance
𝑒=𝑒 𝑇,𝑣 =𝑒(𝑇)≠𝑓𝑛(𝑣) β„Ž=β„Ž 𝑇,𝑃 =β„Ž(𝑇)≠𝑓𝑛(𝑃) For ideal gases Differentials (small changes) 𝑑𝑒= πœ•π‘’ πœ•π‘‡ 𝑣 𝑑𝑇+ πœ•π‘’ πœ•π‘£ 𝑇 𝑑𝑣 π‘‘β„Ž= πœ•β„Ž πœ•π‘‡ 𝑃 𝑑𝑇+ πœ•β„Ž πœ•π‘ƒ 𝑇 𝑑𝑃 For ideal gas πœ•π‘’ πœ•π‘£ 𝑇 = 0; πœ•π‘’ πœ•π‘‡ 𝑣 = 𝑐 𝑣 𝑇 𝒅𝒖= 𝒄 𝒗 𝑻 𝒅𝑻 πœ•β„Ž πœ•π‘ƒ 𝑇 = 0; πœ•β„Ž πœ•π‘‡ 𝑃 = 𝑐 𝑃 𝑇 𝒅𝒉= 𝒄 𝑷 𝑻 𝒅𝑻 Specific Heats, 𝑐 𝑣 and 𝑐 𝑃 [kJ/kg K] Energy input to increase temperature of one kg of a substance by 1Β°C at constant volume or pressure How are 𝑐 𝑣 𝑇 and 𝑐 𝑃 𝑇 measured? Calculate 𝑐 𝑝 π‘œπ‘Ÿ 𝑣 = 𝑄 π‘šΞ”π‘‡ 𝑝 π‘œπ‘Ÿ 𝑣 Molar based 𝑐 𝑝 = 𝑐 𝑝 βˆ—π‘€π‘Š; 𝑐 𝑣 = 𝑐 𝑣 βˆ—π‘€π‘Š m, T Q w P = wg/A = constant 𝑐 𝑝 m, T Q 𝑐 𝑣 V = constant

4 Molar Specific Heat Dependence on Temperature
𝑐 𝑝 𝑇 π‘˜π½ π‘˜π‘šπ‘œπ‘™ 𝐾 𝑇 [K] Monatomic molecules: Nearly independent of temperature Only possess translational kinetic energy Multi-Atomic molecules: Increase with temperature and number of molecules Also possess rotational and vibrational kinetic energy

5 Specific Internal Energy and Enthalpy
Once 𝑐 𝑣 𝑇 and 𝑐 𝑝 𝑇 are known, specific enthalpy h(T) and internal energy u(T) can be calculated by integration 𝑒 𝑇 = 𝑒 π‘Ÿπ‘’π‘“ + 𝑇 π‘Ÿπ‘’π‘“ 𝑇 𝑐 𝑣 𝑇 𝑑𝑇 β„Ž 𝑇 = β„Ž π‘Ÿπ‘’π‘“ + 𝑇 π‘Ÿπ‘’π‘“ 𝑇 𝑐 𝑝 𝑇 𝑑𝑇 Primarily interested in changes, i.e. β„Ž 𝑇 2 βˆ’ β„Ž 𝑇 1 = 𝑇 1 𝑇 2 𝑐 𝑝 𝑇 𝑑𝑇 , When composition does not change 𝑇 π‘Ÿπ‘’π‘“ and β„Ž π‘Ÿπ‘’π‘“ are not important Tabulated: Appendix A, pp , for combustion gases bookmark (show tables) Curve fits, Page 702, for Fuels Use in spreadsheets 𝑐 𝑣 = 𝑐 𝑝 βˆ’ 𝑅 𝑒 ; 𝑐 𝑝 = 𝑐 𝑝 /π‘€π‘Š; 𝑐 𝑣 = 𝑐 𝑣 /π‘€π‘Š

6 Mixture Properties Extensive Enthalpy 𝐻 π‘šπ‘–π‘₯ = π‘š 𝑖 β„Ž 𝑖 = π‘š π‘‡π‘œπ‘‘π‘Žπ‘™ β„Ž π‘šπ‘–π‘₯
𝐻 π‘šπ‘–π‘₯ = π‘š 𝑖 β„Ž 𝑖 = π‘š π‘‡π‘œπ‘‘π‘Žπ‘™ β„Ž π‘šπ‘–π‘₯ 𝒉 π’Žπ’Šπ’™ (𝑻)= π‘š 𝑖 β„Ž 𝑖 π‘š π‘‡π‘œπ‘‘π‘Žπ‘™ = 𝒀 π’Š 𝒉 π’Š (𝑻) 𝐻 π‘šπ‘–π‘₯ = 𝑁 𝑖 β„Ž 𝑖 = 𝑁 π‘‡π‘œπ‘‘π‘Žπ‘™ β„Ž π‘šπ‘–π‘₯ 𝒉 π’Žπ’Šπ’™ (𝑻)= 𝑁 𝑖 β„Ž 𝑖 𝑁 π‘‡π‘œπ‘‘π‘Žπ‘™ = 𝝌 π’Š 𝒉 π’Š (𝑻) Specific Internal Energy 𝒖 π’Žπ’Šπ’™ (𝑻)= 𝒀 π’Š 𝒖 π’Š (𝑻) 𝒖 π’Žπ’Šπ’™ 𝑻 = 𝝌 π’Š 𝒖 π’Š 𝑻 Use these relations to calculate mixture specific enthalpy and internal energy (per mass or mole) as functions of the properties of the individual components and their mass or molar fractions. u and h depend on temperature, but not pressure

7 Standardized Enthalpy and Enthalpy of Formation
Needed to find 𝑒 2 βˆ’ 𝑒 1 and β„Ž π‘œ βˆ’ β„Ž 𝑖 for chemically-reacting systems because energy is required to form and break chemical bonds Not considered in Thermodynamics I β„Ž 𝑖 𝑇 = β„Ž 𝑓,𝑖 π‘œ 𝑇 π‘Ÿπ‘’π‘“ +Ξ” β„Ž 𝑠,𝑖 (𝑇) Standard Enthalpy at Temperature T = Enthalpy of formation from β€œnormally occurring elemental compounds,” at standard reference state: Tref = 298 K and PΒ° = 1 atm Sensible enthalpy change in going from Tref to T = 𝑇 π‘Ÿπ‘’π‘“ 𝑇 𝑐 𝑝 𝑇 𝑑𝑇 Normally-Occurring Elemental Compounds Examples: O2, N2, C, He, H2 Their enthalpy of formation at 𝑇 π‘Ÿπ‘’π‘“ =298 K are defined to be β„Ž 𝑓,𝑖 π‘œ 𝑇 π‘Ÿπ‘’π‘“ = 0 Use these compounds as bases to tabulate the energy to form other compounds

8 Standard Enthalpy of O atoms
To form 2O atoms from one O2 molecule requires 498,390 kJ/kmol of energy input to break O-O bond (initial and final T and P are same) At 298K (1 mole) O ,390 kJ οƒ  (2 mole) O β„Ž 𝑓,𝑂 π‘œ 𝑇 π‘Ÿπ‘’π‘“ = 498,390 kJ 2 π‘˜π‘šπ‘œπ‘™ 𝑂 =+ 249,195 π‘˜π½ π‘˜π‘šπ‘œπ‘™ 𝑂 β„Ž 𝑓,𝑖 π‘œ 𝑇 π‘Ÿπ‘’π‘“ for other compounds are in Appendices A and B, pp To find enthalpy of O at other temperatures use β„Ž 𝑂 2 𝑇 = β„Ž 𝑓, 𝑂 2 π‘œ 𝑇 π‘Ÿπ‘’π‘“ +Ξ” β„Ž 𝑠, 𝑂 2 (𝑇)

9 Example: Problem 2.14, p 71: Consider a stoichiometric mixture of isooctane and air. Calculate the enthalpy of the mixture at the standard-state temperature ( K) on a per-kmol-of-fuel basis (kJ/kmolfuel), on a per-kmol-of-mixture basis (kJ/kmolmix), and on a per-mass-of-mixture basis (kJ/kgmix). Find enthalpy at K of different bases Problem 2.15: Repeat for T = 500 K

10 Standard Enthalpy of Isooctane
Coefficients π‘Ž 1 to π‘Ž 8 from Page 702 πœƒ= 𝑇 [𝐾] 1000 𝐾 ; β„Ž π‘œ π‘˜π½ π‘˜π‘šπ‘œπ‘™π‘’ =4184( π‘Ž 1 πœƒ+ π‘Ž 2 πœƒ π‘Ž 3 πœƒ π‘Ž 4 πœƒ 4 4 βˆ’ π‘Ž 5 πœƒ + π‘Ž 6 ) Spreadsheet really helps this calculation

11 Enthalpy of Combustion (or reaction)
Reactants K, P = 1 atm Stoichiometric Products Complete Combustion Cοƒ CO2 Hοƒ H2O K, 1 atm 𝑄 𝐼𝑁 <0 π‘Š π‘‚π‘ˆπ‘‡ =0 How much energy can be released if product temperature and pressure are the same as those of the reactant? Steady Flow Reactor 𝑄 𝐼𝑁 βˆ’ π‘Š π‘‚π‘ˆπ‘‡ = 𝐻 𝑃 βˆ’ 𝐻 𝑅 = π‘š β„Ž 𝑃 βˆ’ β„Ž 𝑅 𝑄 π‘‚π‘ˆπ‘‡ = 𝐻 𝑅 βˆ’ 𝐻 𝑃 = π‘š β„Ž 𝑅 βˆ’ β„Ž 𝑃

12

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