A review of vaporization models as design criterion for bipropellant thrust chambers
Abstract
Keywords
Full Text:
PDFReferences
Huzel, D. K., Huang, D. H. Modern Engineering for Design of Liquid-Propellant Rocket Engines. American Institute of Aeronautics and Astronautics Publ., 1992. 425 p.
Humble, R. W., Henry, G. N., Larson, W. J. Space Propulsion Analysis and Design. McGraw-Hill, Sep 1, 1995. 748 p.
Wang, Z. G. Internal Combustion Processes of Liquid Rocket Engines: Modeling and Numerical Simulations. National Defense Industry Press, Wiley Publ., 2016. 391 p.
Turns, S. R. An Introduction to Combustion Concepts. McGraw-Hill Publ., 3rd Ed., 2012. 752 p.
Lefebvre, A. H., McDonell, V. G. Atomization and Sprays. Taylor & Francis Group, LLC, 2017. 300 p.
Ghafourian, A. S., Mahalingam, S., Dindi, H., Daily, J. W. A Review of Atomization in Liquid Rocket Engines. 29th Aerospace Sciences Meeting, AIAA 91-0283, 1991. 10 p. DOI: 10.2514/6.1991-283.
Priem, R. J. Propellant Vaporization as a Criterion for Rocket Engine Design; Calculations of Chamber Length to Vaporize a Single n-Heptane Drop. NACA – National Advisory Committee for Aeronautics, Technical Note 3985, 1957. 41 p.
Spalding, D. B. A One-Dimensional Theory of Liquid-Fuel Rocket Combustion. Ministry of Supply Aeronautical Research Council, Imperial College of Science and Technology, London, 1959. 32p.
Gontijo, M. S., Fischer, G. A. A., Costa, F. S. Evaluation of SMD Effects on Characteristic Lengths of Liquid Rocket Engines Using Ethanol/LOx and RP-1/Lox. 18th Brazilian Congress of Thermal Sciences and Engineering, 2020, pp. 1-10. DOI: 10.26678/ABCM.ENCIT2020.CIT20-0794.
Belal, H. M. Numerical Simulation of Spray Combustion. Master dissertation on Military Technical College (MTC), 2010. 300 p.
Belal, H. M. Validation of a Simplified Model for Liquid Propellant Rocket Engine Combustion Chamber Design. IOP Conference Series Materials Science and Engineering, 2020, pp. 1-15. DOI: 10.1088/1757-899X/973/1/012003.
Belal, H. M. Vaporization-Controlled Simplified Model for Liquid Propellant Rocket Engine Combustion Chamber Design. IOP Conference Series Materials Science and Engineering, 2019, pp. 1-15. DOI: 10.1088/1757-899X/610/1/012088.
Kessaev, J. V. Theory and Calculation of Liquid-Propellant Engines. Moscow Aviation Institute, Feb-Apr, 1997. 306 p.
Anderson, J. D. Jr. Fundamentals of Aerodynamics. McGraw Hill Education, 6th Ed., 2017. 1152p.
Anderson, J. D. Jr. Modern Compressible Flow: With Historical Perspective. McGraw Hill Education, 3rd Ed., 2002. 784 p.
Zucrow, M. J. Hoffman, J. D. Gas Dynamics. Vol. 1. John Wiley & Sons, Inc., 1976. 772 p.
Hill, P., Peterson, C. Mechanics and Thermodynamics of Propulsion. Addison Wesley Longman, 2nd Ed. Sep 1, 1992. 753 p.
Hugh, B. Mc. Numerical Analysis of Existing Liquid Rocket Engines as a Design Process Starter. 31st, AIAA/ASME/SAE/ASEE Joint Propulsion Conference, July, San Diego, CA, 1995. 14 p. DOI: 10.2514/6.1995-2970.
Altman, D. Carter, J. M., Penner, S. S., Summerfield, M. Liquid Propellant Rockets. Princeton Legacy Library, 1960. 189 p.
Summerfield, M. A Theory of Unstable Combustion in Liquid Propellant Rocket Systems. Journal of the American Rocket Society, 1951, vol. 21, no. 5. 6 p. DOI: 10.2514/8.4374.
Priem, R. J. Propellant Vaporization as a Criterion for Rocket Engine Design; Calculations Using Various Log-Probability Distributions of Heptane Drops. NACA – National Advisory Committee for Aeronautics, Technical Note 4098, 1957. 29 p.
Clark, B. J., Hershc, M., Priem, R. J. Propellant Vaporization as a Criterion for Rocket Engine Design; Calculations of Chamber Length to Vaporize Various Propellants. NACA – National Advisory Committee for Aeronautics, Technical Note 3883, 1958. 37 p.
Priem, R. J. Vaporization of Propellants in Rocket Engines. ARS Journal, 1959, vol. 29. 6 p. DOI: 10.2514/8.4919.
Priem, R. J., Heidmann, M. F., Propellant Vaporization as a Design Criterion for Rocket-Engine Combustion Chambers. NASA Technical Report R-67, 1960, pp. 1-37.
Sirignano, W. A. Fluid Dynamics and Transport of Droplets and Sprays. 2nd Ed., Cambridge University Press, 2010. 480 p.
Ranz, W. E., Marshall, W. R. Evaporation from Drops. Chemical Engineering Progress, 1952, vol. 48, no. 3. 5 p.
Ingebo, R. D. Vaporization Rates and Drag Coefficients for Isooctane Sprays in Turbulent Air Streams. NACA – National Advisory Committee for Aeronautics, Technical Note 3265, 1954. 40 p.
Abramzon, B., Sirignano, W. A. Droplet Vaporization for Spray Combustion Calculations. International Journal of Heat Mass Transfer, 1989, vol. 32, no. 9, pp. 1605-1618. DOI: 10.1016/0017-9310(89)90043-4.
Aggarwal, S. K. A Review of Droplet Dynamics and Vaporization Modeling for Engineering Calculations. Journal of Engineering for Gas Turbines and Power, 1995, vol. 17, pp. 453-461. DOI: 10.1115/1.2814117.
Dipprey, D. F. Liquid Rocket Engines. Chemistry in Space Research. Elsevier, 1972, pp. 464-597,
Spalding, D. B. Combustion in Liquid-Fuel Rocket Motors. Ministry of Supply Aeronautical Research Council, Imperial College of Science and Technology, London, 1958. 27 p. DOI: 10.1017/S0001925900001402.
Spalding, D. B. The Combustion of Liquid Fuels. International Symposium on Combustion, 1953. 17 p. DOI: 10.1016/S0082-0784(53)80110-4.
Merouane, H., Bounif, A. Theoretical and Numerical Analysis of Fuel Droplet Vaporisation at High Temperatures. WSEAS Transactions on Heat and Mass Transfer, 2010, pp. 189-196.
Deprédurand, V., Castanet, G., Lemoine, F. Heat and Mass Transfer in Evaporating Droplets in Interaction: Influence of the fuel. International Journal of Heat and Mass Transfer, 2017, Elsevier, pp. 3495-3502. DOI: 10.1016/j.ijheatmasstransfer.2010.04.010.
Gontijo, M. S. Preliminary Design, Analysis and Optimization of a Liquid Propellant Rocket Engine for Sounding Rockets (in Portuguese). Monography Aerospace Engineering, University of Brasília, 2022. 286 p.
Khan, T. W., Qamar, I. Optimum Characteristic Length of Gas Generator for Liquid Propellant Rocket Engine. Acta Astronautica, Elsevier, 2020, vol. 176, pp. 1-12. DOI: 10.1016/j.actaastro.2020.06.021.
Gontijo, M. S., Fischer, G. A. A., Costa, F. S. Characteristic Lengths of Liquid Propellant Rocket Engines and the Influence of Chemical Reactions. International Congress of Mechanical Engineering, 2021, pp. 1-10. DOI: 10.26678/ABCM.COBEM2021.COB2021-2105.
Gontijo, M. S., Fischer, G. A. A., Costa, F. S. Influence of SMD on Characteristic Lengths of Liquid Propellant Rocket Engines. 8th Brazilian Combustion Institute Summer School of Combustion, 2021. 10p.
Adler, J. A One-Dimensional Theory of Liquid-Fuel Rocket Combustion; Part II: The Influence of Chemical Reaction. Ministry of Supply Aeronautical Research Council, Imperial College of Science and Technology, London, 1959, pp. 1-20.
Williams, F. A. Combustion Theory. Benjamin/Cummings, 2nd Ed., 1985. 708 p.
Glassman, I., Yetter, R. A., Glumac, N. G. Combustion. Elsevier, 5th Ed., 2014. 774 p.
Ernst, R. L. L. Liquid Rocket Analysis (LiRA); Development of a Liquid Bi-Propellant Rocket Engine: Design, Analysis and Optimization. Master of Science dissertation, Master of Science in Spaceflight at Delft University of Technology, 2021. 188 p.
Law, C. K., Law, H. K. A d²-Law for Multicomponent Droplet Vaporization and Combustion. AIAA Journal, 1982, vol. 20, no. 4, pp. 522-527. DOI: 10.2514/3.51103.
Khan, T., Qamar, I., Shah, F., Akhtar, K., Akhtar, R. Model for Fuel Droplet Evaporation in Combustion Chamber of Liquid Propellant Rocket Engines. Journal of Engineering and Applied Sciences, 2018, vol. 31, no. 1, pp. 1-10..
Khan, T., Qamar, I. Factors Affecting Characteristic Length of the Combustion Chamber of Liquid Propellant Rocket Engines. Mehran University Research Journal of Engineering & Technology, 2019, vol. 38, no. 3, pp. 729-744. DOI: 10.22581/muet1982.1903.16.
Raju, M. S., Sirignano, W. A. Multicomponent Spray Computations in a Modified Centerbody Combustor. Journal of Propulsion and Power, 1990, vol. 6, no. 2, pp. 97-105. DOI: 10.2514/3.23229.
Rizk, N. K., Mongia, H. C. Gas Turbine Combustor Design Methodology. AIAA/ASME/SAE/ASEE Joint Propulsion Confference, New York, 1986, pp. 1-11. DOI: 10.2514/6.1986-1531.
Wang, B., Kronenburg, A., Tufano, G. L., Stein, O. T. Fully Resolved DNS of Droplet Array Combustion in Turbulent Convective Flows and Modelling for Mixing Fields in Inter-Droplet Space. Combustion and Flame, 2018, vol. 189, pp. 347-366. DOI: 10.1016/j.combustflame.2017.11.003.
Farmer, R., Cheng, G., Chen, Y. CFD Simulation of Liquid Rocket Engine Injectors; Par 2. Simulations of the RCM-2 Experiment. 2nd International Workshop on Rocket Combustion Modeling: Atomization, Combustion and Heat Transfer, 2001, pp. 1-12.
Duret, B., Qubeissi, M. A., Sazhin, S., Crua, C. Evaporating Droplets: Comparisons between DNS and Modelling. ILAS, 26th Annual Conference on Liquid Atomization and Spray Systems, Bremen-Germany, 2014, pp. 1-9. DOI: 10.13140/2.1.3258.8164.
Wang, Y., Yang, V. Vaporization of Liquid Droplet with Large Deformation and High Mass Transfer Rate, I: Constant-density, Constant-property case. Journal of Computational Physics, 2019, vol. 392, pp. 56-70. DOI: 10.1016/j.jcp.2019.03.013.
Wang, Y., Chen, X., Wang, X., Yang, V. Vaporization of Liquid Droplet with Large Deformation and High Mass Transfer Rate, II: Variable-density, Variable-property case. Journal of Computational Physics, 2019, vol. 394, pp. 1-17. DOI: 10.1016/j.jcp.2019.04.052.
Sahzin, S. S. Modelling of Droplet Heating and Evaporation. University of Brighton, 2017, pp. 45-75. DOI: 10.1007/978-981-10-7449-3_3.
Salvador, C. A. V. Mathematical Model of Bipropellant Combustion Chambers (in Portuguese). Masters Dissertation, INPE - National Space Research Institute, 2004. 215 p.
Salvador, C. A. V., Costa, F. S. Vaporization Lengths of Hydrazine Fuels Burning with NTO. Journal of Propulsion and Power, 2006, vol. 22, no. 6, pp. 1362-1372. DOI: 10.2514/1.18348.
Tonini, S., Cossali, G. E. One-dimensional Analytical Approach to Modelling Evaporation and Heating of Deformed Drops. International Journal of Heat and Mass Transfer, 2016, vol. 97, pp. 301-307. DOI: 10.1016/j.ijheatmasstransfer.2016.02.004.
Yang, S., Gao, Y., Cao, Y., Gu, Y., Gong, Z. Investigation on Deformation of an Evaporating Droplet in Convective Transcritical Enviroments. Advances in Mechanical Engineering, 2014, pp. 1-12. DOI: 10.1155/2014/326059.
Costa, E. M. S., Costa, F. S., Mendonça, M. T. 1.5D Model of Bipropellant Combustion Chambers (in Portuguese). 11º Workshop in Engineering and Space Technologies, 2020. 9 p.
Sirignano, W. A. Fuel Droplet Vaporization and Spray Combustion Theory. Progress in Energy and Combustion Science, 1983, vol. 9, no. 4, pp. 291-322.
Heidmann, M. F., Priem, R. J. Propellant Vaporization as a Design Criterion for Rocket-Engine Combustion Chambers; Relation Between Percentage of Propellant Vaporized and Engine Performance. NACA – National Advisory Committee for Aeronautics, Technical Note 4219, 1958. 20 p.
DOI: https://doi.org/10.32620/aktt.2022.4sup1.13