Airfoil seсtion in the near-sonic flow of gas

Юрий Александрович Крашаница, Дмитрий Юрьевич Жиряков

Abstract


The subject of investigation in this article is transonic flow. This is a condition in which local speeds of sound are appears on the wing surface, even at the subsonic speed of the nonturbulent flow. As a result, at a certain speed of the incoming flow, the flow regime around the aerodynamic surface will change sharply, which in turn changes the aerodynamic characteristics. Aerodynamic surfaces of the most transport category airplane experience transonic airflow during flight. The goal of the investigation is to study aerodynamic characteristics using numerical methods. The use of numerical methods in the design of aircraft structures is used more and more often to determine the optimal parameters for given operating conditions. This contributes to obtaining a more optimal and perfect design. In this article, we carried out a numerical analysis of the aerodynamic characteristics of airfoils in the transonic flow case using the CAE system CFD ANSYS. As a result of the research, the distributions of the pressure coefficients over the profile surface were obtained. The nature of the flow is obtained, which is similar to the picture of the pressure coefficients for transonic flow in the published sources of this topic. In the area of the middle of the profile, a shock-wave is observed. As a result, the flow around the airfoil changes, which contributes to a change in aerodynamic characteristics. The behavior of the aerodynamic drag and lift coefficients depending on the speed of the Mach number is considered. Also, the position of the center of pressure was analyzed at various velocities of the nonturbulent flow. The calculation was carried out at the cruising altitude of a medium-range aircraft of 11 km. For the calculations, we used the characteristics of the air temperature, the pressure of a given height from the table of the standard atmosphere.

Keywords


aircraft; airfoil; transonic flow; shock-wave; impact wave; numerical methods; Mach number; nonturbulent flow; aerodynamic characteristics; center of pressure

References


Galdi, G. P. An Introduction to the Mathematical Theory of the Navier–Stokes Equations. New York, Dordrecht, Heidelberg, London, Springer Publ., 2011. 1018 p.

Cole, Julian D., Cook, L. Pamela. Transzvukovaja ajerodinamika [Transonic aerodynamics]. Мoscow, Mir Publ., 1989. 360 p.

Shakhov, V. G., Lyaskin, A. S. Mekhanika zhidkosti i gaza v aerokosmicheskoi tekhnike [Fluid and Gas Mechanics in Aerospace Engineering]. Samara, National Research University Publ., 2011. 108 p.

Airfoil Tools. Available at: http://airfoiltools.com/airfoil/details?airfoil=b737b-il. (accessed 13.01.2021).

Donets, O. D., Kudryavtsev, V. O. Osobennosti obespechenie aerodinamicheskikh kharakteristik regional'nogo passazhikogo samoleta [Specifics of providing regional passenger aircraft aerodynamic characteristics]. Otkrytye informatsionnye i komp'yuternye integrirovannye tekhnologii – Open Information and Computer Integrated Technologies, NAU «KhAI» Publ., 2019, no. 83. pp. 106-133.

Gao, Chuanqiang., Zhang, Weiwei. Transonic aeroelasticity: A new perspective from the fluid mode. Progress in Aerospace Sciences, 2020, no. 113, Articles Id: 100596. 19 p. DOI: 10.1016/j.paerosci.2019.100596.

Krashanytsya, Yu. A. Vektorno-tenzornyi analiz, teoriya potentsiala i metod granichnykh integral'nykh uravnenii v nachal'no-kraevykh zadachakh aerogidrodinamiki [Method of boundary integral equations in initial boundary problem of aerohydrodynamics]. Kiev, Nauk. Dumka Publ., 2016. 273 p.




DOI: https://doi.org/10.32620/aktt.2021.2.03