|
|
|
|
References
|
|
| |
| 1. |
Y. Ju, K. Maruta, “Microscale combustion: Technology development and fundamental research”, Progress in Energy and Combustion Science, 37:6 (2011), 669–715 |
| 2. |
A. Fan, S. Minaev, S. Kumar, W. Liu, “Regime diagrams and characteristics of flame patterns in radial microchannels with temperature gradients”, Combustion and Flame, 152:4 (2008), 479–489 |
| 3. |
A. Fan, S. Minaev, E. Sereshchenko, R. Fursenko, S. Kumar, W. Liu, K. Maruta, “Experimental and numerical investigations of flame pattern formations in a radial microchannel”, Proceedings of the Combustion Institute, 32:2 (2009), 3059–3066 |
| 4. |
S. Minaev, R. Fursenko, E. Sereshchenko, A. Fan, S. Kumar, “Oscillating and rotating flame patterns in radial microchannels”, Proceedings of the Combustion Institute, 34:2 (2013), 3427–3434 |
| 5. |
V. V. Zamaschikov, “Gazovye vraschayuschiesya plamena”, Fizika goreniya i vzryva, 39:2 (2003), 9–10 |
| 6. |
V. V. Zamaschikov, “Spinovoe gazovoe gorenie v uzkoi scheli”, Fizika goreniya i vzryva, 42:3 (2006), 23–26 |
| 7. |
Ya. B. Zeldovich, G. I. Barenblatt, V. B. Librovich, G. M. Makhviladze, Matematicheskaya teoriya goreniya i vzryva, Nauka, M., 1980 |
| 8. |
V. V. Bychkov, M. A. Liberman, “Dynamics and stability of premixed flames”, Physics Reports, 325:4–5 (2000), 115–237 |
| 9. |
M. Matalon, “Intrinsic flame instabilities in premixed and nonpremixed combustion”, Annual Review of Fluid Mechanics, 39:1 (2007), 163–191 |
| 10. |
P. Clavin, G. Searby, Combustion Waves and Fronts in Flows: Flames, Shocks, Detonations, Ablation Fronts and Explosion of Stars, Cambridge University Press, 2016 |
| 11. |
G. I. Sivashinsky, “Diffusional-thermal theory of cellular flames”, Combustion Science and Technology, 37:3–4 (1977), 137–146 |
| 12. |
D. Fernández-Galisteo, V. N. Kurdyumov, P. D. Ronney, “Analysis of premixed flame propagation between two closely-spaced parallel plates”, Combustion and Flame, 190 (2018), 133–145 |
| 13. |
G. Joulin, G. I. Sivashinsky, “Influence of momentum and heat losses on the large-scale stability of quasi-2D premixed flames”, Combustion Science and Technology, 98:1–3 (1994), 11–23 |
| 14. |
D. Fernández-Galisteo, J. Gross, V. N. Kurdyumov, P. D. Ronney, “Premixed flame propagation between two closely spaced parallel plates”, 25th ICDERS (2015, Leeds, UK), 1–6 |
| 15. |
J. Wongwiwat, J. Gross, P. D. Ronney, “Flame propagation in narrow channels at varying Lewis number”, 25th ICDERS (2015, Leeds, UK), 3–8 |
| 16. |
M. M. Alekseev, I. V. Smirnova, V. P. Samsonov, “Formirovanie spinovogo fronta gazovozdushnogo plameni”, Pisma v Zhurnal tekhnicheskoi fiziki, 37:7 (2011), 80–87 |
| 17. |
V. P. Samsonov, M. M. Alekseev, I. V. Smirnova, “Mekhanizm formirovaniya spinovogo fronta plameni”, Uspekhi fizicheskikh nauk, 181:9 (2011), 965–972 |
| 18. |
M. M. Alexeev, O. Yu. Semenov, S. E. Yakush, “Experimental study on cellular premixed propane flames in a narrow gap between parallel plates”, Combustion Science and Technology, 2018 |
| 19. |
V. E. Borisov i dr., “Programmnyi kompleks TCS 3D: matematicheskaya model”, Preprinty IPM im. M. V. Keldysha, 2015, 006, 20 pp. http://library.keldysh.ru/preprint.asp?id=2015-6 |
| 20. |
V. E. Borisov i dr., “Programmnyi kompleks TCS 3D: vychislitelnaya model”, Preprinty IPM im. M. V. Keldysha, 2015, 110, 20 pp. http://library.keldysh.ru/preprint.asp?id=2015-110 |
| 21. |
M. M. Alekseev, V. E. Borisov, O. Yu. Semenov, S. E. Yakush, “Modelirovanie goreniya v uzkom ploskom kanale”, Preprinty IPM im. M. V. Keldysha, 2016, 134, 32 pp. http://library.keldysh.ru/preprint.asp?id=2016-134 |
| 22. |
Yu. V. Lapin, M. Kh. Strelets, Vnutrennie techeniya gazovykh smesei, Nauka, M., 1989 |
| 23. |
M. S. Day, J. B. Bell, “Numerical simulation of laminar reacting flows with complex chemistry”, Combustion Theory and Modelling, 4:4 (2000), 535–556 |
| 24. |
J. Bell, M. Day, “Adaptive Methods for Simulation of Turbulent Combustion”, Turbulent Combustion Modeling: Advances, New Trends and perspectives, Chapter 13, Fluid mechanics and its applications, 95, Springer, London, 2010, 201–329 |
| 25. |
T. Poinsot, D. Veynante, Theoretical and Numerical Combustion, 2nd Ed., Edwards Inc., Philadelphia, 2005, 522 pp. |
| 26. |
J. F. Grcar, An Explicit Runge-Kutta Iteration for Diffusion in the Low Mach Number Combustion Code, Lawrence Berkeley National Laboratory report LBNL-63375, 2007 |
| 27. |
Dzh. Girshfelder, Ch. Kertiss, R. Berd, Molekulyarnaya teoriya gazov i zhidkostei, Inostrannaya literatura, M., 1961, 928 pp. |
| 28. |
S. Gordon, B. J. McBride, Computer Program for Calculation of Complex Chemical Equilibrium Compositions, Rocket Performance, Incident and Reflected Shocks and Chapman–Jouguet Detonations, NASA Report SP-273, 1971 |
| 29. |
A. Burkat, B. Ruscic, Third Millennium Ideal Gas and Condensed Phase Thermochemical Database for Combustion with Updates from Active Thermochemical Tables, Technion Report TAE 960 and ANL Report ANL05/20, 2005 https://burcat.technion.ac.il/ |
| 30. |
R. J. Kee, G. Dixon-Lewis, J. Warnatz, M.E. Coltrin, J. A. Miller, A Fortran Computer Code Package for the Evaluation of GasPhase Multicomponent Transport Properties, Sandia National Laboratories Report SAND86-8246, 1986 |
| 31. |
PARAMESH: Parallel Adaptive Mesh Refinement, https://sourceforge.net/projects/paramesh |
| 32. |
J. B. Bell, D. L. Marcus, “A second-order projection method for variable-density flows”, J. Comput. Phys., 101 (1992), 334–348 |
| 33. |
V. G. Ferreira, M. F. Tomé, N. Mangiavacchi, A. Castelo, J. A. Cuminato, A. O. Fortuna, S. McKee, “High-order upwinding and the hydraulic jump”, Int. J. Numer. Meth. Fluids, 39 (2002), 549–583 |
| 34. |
C. W. Shu, “High order weighted essentially non-oscillatory schemes for convection dominated problems”, SIAM Review, 51 (2009), 82–112 |
| 35. |
HYPRE: Scalable Linear Solvers and Multigrid Methods, http://computation.llnl.gov/project/linear_solvers/software.php |
| 36. |
P. N. Brown, G. D. Byrne, A. C. Hindmarsh, “VODE: a variable coefficient ODE solver”, SIAM J. Sci. Stat. Comp., 10 (1989), 1038–1051 |
| 37. |
HDF5 Tutorial, https://www.hdfgroup.org/HDF5/Tutor/ |
| 38. |
TecIO Library, http://www.tecplot.com/my/tecio-library/ |
| 39. |
B. Rogg, “Sensitivity analysis of laminar premixed CH4-air flames using full and reduced kinetic mechanisms”, Reduced Kinetic Mechanisms and Asymptotic Approximations for Methane-Air flames, Lecture Notes in Physics, 384, ed. M. D. Smooke, Springer Verlag, 1991, 159–192 |
| 40. |
Gibridnyi vychislitelnyi klaster K-100, http://www.kiam.ru/MVS/resourses/k100.html |
| 41. |
Mezhvedomstvennyi superkompyuternyi tsentr RAN, http://www.jscc.ru |