Аuthors
Tushavina O. V.
Moscow Aviation Institute (National Research University), 4, Volokolamskoe shosse, Moscow, А-80, GSP-3, 125993, Russia
e-mail: tushavinaov@mai.ru
Abstract
The paper investigates heat and mass transfer during the flow of a high-temperature boundary layer around the blunted nose sections of high-speed aircraft based on an approximate analytical solution of a system of complete boundary layer equations with a strong pressure gradient. To determine the heat fluxes and temperature fields in a gas and in a blunted body, the physico-mathematical model takes into account the dynamic, diffusive and thermal boundary layers, as well as the balance of convective-diffusive, radiant and conductive heat fluxes at the gas-solid boundary. Based on the obtained approximate analytical solution of the complete boundary layer equations, the distributions of heat fluxes and temperatures along the blunt cone formator are obtained in a wide range of Mach numbers of the incoming flow, various concentrations of the atomic component of the binary gas, and a wide range of catalytic recombination rates, on which the level of diffusive heat fluxes into the wall significantly depends.
Keywords:
boundary layer, heat and mass transfer, heat fluxes, surface temperature, dissociation, two-component gas, atomic component, catalytic recombination rate, radiant heat flux, Prandtl, Reynolds, Schmidt numbers
References
- Tushavina OV, Pronina PF, Egorova MS. Determination of heat fluxes and surface temperatures of structural ele-ments of high-speed aircraft when flowing around a dis-sociating gas stream. STIN. 2023;(12):37–40. (In Russ.).
-
Tushavina OV, Egorova MS. Problems of heat and mass transfer in chemically reacting boundary layers on blunt-ed bodies. Scientific notes of Kazan University. Series: Physi-cal and mathematical sciences. 2023;166(3):294–306. (In Russ.).
-
Tushavina OV, Pronina PF. Heat transfer in media with a finite propagation velocity of thermal disturbances. STIN. 2024;(12):44-47. (In Russ.).
-
Tushavina OV, Egoroba MS, Pronina PF. Modeling of heat transfer in a plate made of composite material in the presence of a thermal energy sink. Lobachevski Jornal of Mathematics. 2024;(5):2003–2009.
-
Dorrens WH. Hypersonic viscous gas flows. Mir Publishing House; 1966. 440 p. (In Russ.).
-
Nikitin PV, Sotnik EV. Catalysis and radiation in thermal protection systems. Moscow: Janus–K; 2013. 336 p. (In Russ.).
-
Avduevsky VS, Galitseisky BM, Glebov DA et al. Funda-mentals of heat transfer in aviation and rocket and space technology. Moscow: Mashinostroenie, 1992. 624 p. (In Russ.).
-
Formalev VF, Kolesnik SA. Mathematical modeling of cou-pled heat transfer between viscous gas-dynamic flows and anisotropic bodies. (2nd ed.). Moscow: LENAND; 2022. 348 p. (In Russ.).
-
Surzhikov ST. Computational study of aerothermody- namics of blunted bodies flow using the example of exper-imental data analysis. Moscow: IPMeh RAS; 2011. 192 p. (In Russ.).
-
Polezhaev YuV, Yurevich FB. Thermal protection. Moscow: Energy; 1976. 392 p. (In Russ.).
-
Formalev VF, Garibyan BA, Kolesnik SA. Mathematical modeling of heat transfer in a plate with plasma spraying of thermal protection on it. Lobachevsky Journal of Mathematics. 2023;44(6):2292–2298.
-
Formalev VF, Kolesnik SA, Kuznetsova EL. Influence of components of the thermal conductivity tensor of a heat-shielding material on the magnitude of heat fluxes from a gas-dynamic boundary layer. Thermophysics of high tem-peratures. 2019;57(1):66–71. (In Russ.).
-
Formalev VF, Kolesnik SA, Kuznetsova EL. Heat and mass transfer on the side surfaces of blunted nosepieces of hypersonic aircraft. Thermophysics of high temperatures. 2021;59(5):797–800. (In Russ.).
-
Lunev VV. Hypersonic aerodynamics. Moscow: Mashi-nostroenie, 1975. (In Russ.).