Acknowledgement
본 연구는 스크램제트 복합추진시스템 특화연구실과제(과제코드: 16-106-501-035)의 지원을 받아 수행하였으며, 이에 감사드립니다.
References
- Berglund, M. and Fureby, C., "LES of Supersonic Combustion in a Scramjet Engine Model," Proceedings of the Combustion Institute, Vol. 31, No. 2, 2007, pp. 2497~2504. https://doi.org/10.1016/j.proci.2006.07.074
- Chavez, F. R. and Schmidt, D. K., "Analytical Aeropropulsive/Aeroelastic Hypersonic-Vehicle Model with Dynamic Analysis," Journal of Guidance, Control, and Dynamics, Vol. 17, No. 6, 1994, pp. 1308~1319. https://doi.org/10.2514/3.21349
- Bolender, M. A. and Doman, D. B., "Nonlinear Longitudinal Dynamical Model of an Air-Breathing Hypersonic Vehicle," Journal of Spacecraft and Rockets, Vol. 44, No. 2, 2007, pp. 374~387. https://doi.org/10.2514/1.23370
- Torrez, S. M., Scholten, N. A., Micka, D. J. and Driscoll, J. F., "A Scramjet Engine Model Including Effects of Precombustion Shocks and Dissociation," 44th AIAA Joint Propulsion Conference & Exhibit, July, 2008, pp. 1~22
- Birzer, C. and Doolan, C. J., "Quasi-One-Dimensional Model of Hydrogen Fueled Scramjet Combustors," Journal of Propulsion and Power, Vol. 25, No. 6, 2009, pp. 1220~1225. https://doi.org/10.2514/1.43716
- Choi, J. H., Park, I. S., Gil, H. Y. and Hwang, K. Y., "Analysis of Dual Combustion Ramjet Using Quasi 1D Model," Journal of the Korean Society of Propulsion Engineers, Vol. 17, No. 6, 2013, pp. 81~88. https://doi.org/10.6108/KSPE.2013.17.6.081
- Kim, S. K., Seo, B. G., Kim S. J., Sung, H. G., Byen, J. R. and Yoon, H. G., "Performance Design Techniques for Scramjet Engines with Finite-rate Chemistry Combustion Models," 34th Korean Society of Propulsion Engineers Spring Conference, May, 2010, pp. 401~405.
- Jachimowski, C. J., "An Analytical Study of the Hydrogen-Air Reaction Mechanism With Application to Scramjet Combustion," NASA technical paper 2791, 1988, p. 15
- Torrez, S. M., Dalle, D. J. and Driscoll, J. F., "New Method for Computing Performance of Choked Reacting Flows and Ram-to-Scram Transition," Journal of Propulsion and Power, Vol. 29, No. 2, 2013, pp. 433~445. https://doi.org/10.2514/1.B34496
- Le, D. B., Goyne, C. P. and Krauss, R. H., "Experimental Study of a Dual-Mode Scramjet Isolator," Journal of Propulsion and Power, Vol. 24, No. 5, 2008, pp. 1050~1057. https://doi.org/10.2514/1.32591
- Heiser, W. H., Pratt, D. T., Daley, D. H. and Mehta, U. B., "Hypersonic Airbreathing Propulsion," American Instiute of Aeronautics and Astronautics, 1 st Ed. Washington DC, 1994, pp. 342~346.
- Saxena, P. and Williams, F. A., "Testing a Small Detailed Chemical-Kinetic Mechanism for the Combustion of Hydrogen and Carbon Monoxide," Combustion and Flame, Vol. 146, No. 1-2, 2006, pp. 316~323. https://doi.org/10.1016/j.combustflame.2005.10.004
- Pandey, K. M. and Sivasakthivel, T., "Recent Advance in Scramjet Fuel Injection - A Review," International Journal of Chemical Engineering and Applications, Vol. 1, No. 4, 2010, pp. 294~301. https://doi.org/10.7763/IJCEA.2010.V1.52
- Kee, R. J., Rupley, F. M., Meeks, E. and Miller, J. M., "CHEMKIN-III: A Fortran Chemical Kinetics Package for the Analysis of Gas-Phase Chemical and Plasma Kinetics," SANDIA REPORT, 1996, pp. 21~22.
- Wakelyn, N. T. and McLain, A. G., "Polynomial Coefficient of Thermochemical Data for the C-H-O-N System," NASA Technical memorandum, 1975, pp. 14~28.
- Lee, J. W. and Kang, S. H., "Design Improvement and Performance Evaluation of 2D Scramjet Inlet," 54th Korean Society of Propulsion Engineers Spring Conference, July, 2020, pp. 53~58.
- Ikui. T., Matsuo, K. and Nagai, M., "The Mechanism of Pseudo-Shock Waves," Bulletin of JSME, Vol. 17, No. 108, 1974, pp. 731~739. https://doi.org/10.1299/jsme1958.17.731