Mathematical modeling of a swirling jet in applications to low-emission combustion of low-grade fuels
Žurnal Srednevolžskogo matematičeskogo obŝestva, Tome 23 (2021) no. 3, pp. 308-317.

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The search for new solutions in the field of energy, preventing negative impact on the environment, is one of the priority tasks for modern society. Natural gas occupies a stable position in the demand of the UES of Russia for fossil fuel. Biogas is a possible alternative fuel from organic waste. Biogas has an increased content of carbon dioxide, which affects the speed of flame propagation, and a lower content of methane, which reduces its heat of combustion. However, the combined combustion of natural gas and biogas, provided that the mixture of fuel and oxidizer is well mixed, can, on the one hand, reduce the maximum adiabatic temperature in the combustion chamber of power boilers at TPPs, and, on the other, increase the stability of biogas combustion. For the combined combustion of natural gas and biogas in operating power boilers, it is necessary to reconstruct the existing burners. For a high-quality reconstruction of burners capable of providing stable and low-toxic combustion of fuel, it is important to have theoretical data on the combustion effect of combustion of combinations of organic fuels on the temperature distribution in the combustion zone and on its maximum value. In this paper, self-similar solutions of the energy equation for axisymmetric motion of a liquid (gas) in a model of a viscous incompressible medium are obtained. Basing on them, a stationary temperature field in swirling jets is constructed. A set of programs based on the ANSYS Fluent software solver has been developed for modeling and researching of thermal and gas-dynamic processes in the combustion chamber. On the basis of the $k$ - $ \epsilon$ (realizable) turbulence model, the combustion process of a swirling fuel-air mixture is simulated. The results of an analytical and numerical study of the temperature and carbon dioxide distribution in the jet are presented.
Keywords: gas dynamics, temperature, power boiler, natural gas, biogas, combined combustion.
Mots-clés : emissions
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U. J. Mizher; V. N. Kovalnogov; P. A. Vel'misov. Mathematical modeling of a swirling jet in applications to low-emission combustion of low-grade fuels. Žurnal Srednevolžskogo matematičeskogo obŝestva, Tome 23 (2021) no. 3, pp. 308-317. http://geodesic.mathdoc.fr/item/SVMO_2021_23_3_a4/

[1] Environmental Safety Strategy of the Russian Federation for the Period up to 2025, Approved by the Decree of the President of the Russian Federation of April 19, 2017 No176 (In Russ.)

[2] Scheme and Program for the Development of the Unified Energy System of Russia for 2018–2024, Approved by order of the Ministry of Energy of Russia dated 02.28.2018 No121 (In Russ.)

[3] I. Ya. Sigal, A. V. Marasin, A. V. Smikhula, “Gas Burners for Combustion of Biogas in Boilers”, Energy Technology and Resource Conservation, 3 (2014), 68–71 (In Russ.)

[4] U. J. Mizher, V. N. Kovalnogov, P. A. Velmisov, A. V. Chukalin, R. V. Fedorov, A software package for the study of stationary gas-dynamic and thermal processes in the combustion chamber with automated preparation of geometric and boundary conditions for the model, Testimonial. about the state. reg. computer programs No2021615282, UlSTU, 2021 (In Russ.)

[5] ANSYS FLUENT 12.0. Theory Guide, 2009 (In English)

[6] H. Versteeg, V. Malalasekera, Introduction to Computational Fluid Dynamics, 2nd ed., Prentice Hall, Glasgow, 2007, 520 pp. (In Russ.)

[7] L. G. Loitsyansky, Mechanics of Fluid and Gas, Nauka Publ., Main Edition of Phys.-Math. Literature, M., 1978, 736 pp. (In Russ.)

[8] H. Schlichting, K. Gersten, Grenzschicht-Theorie, Springer-Verlag, Berlin, 2006, 799 pp. | DOI

[9] P. A. Velmisov, U. J. Mizher, “Asymptotic study of heat and mass transfer processes in viscous fluids”, AIP Conference Proceedings, 2333:1 (2021), 120003-1–120003-12. (In English) | DOI

[10] P. A. Velmisov, U. J. Mizher, V. N. Kovalnogov, “Asymptotic Study of Heat and Mass Transfer in Weakly Twisted Jets”, Zhurnal Srednevolzhskogo matematicheskogo obshchestva, 22:2 (2020), 200–207 (In Russ.) | DOI

[11] J. D. Anderson, Computational Fluid Dynamics: The Basic with Application, McCraw-Hill, New York, 1995, 563 pp.

[12] K. A. Hoffman, S. T. Chiang, Computational Fluid Dynamics, v. 1, 4th ed, Engineering Education System, 2000, 479 pp. (In English)

[13] T. J. Chung, Computational fluid dynamics, Cambridge University Press, Cambridge, 2010, 1034 pp. (In English) | Zbl