The Influence of Gas Models on Numerical Simulations of Cryogenic Flow

Author:

Hu Ruifan1ORCID,Chen Yongliang1,Wu Jifei2,Tian Shuling1ORCID

Affiliation:

1. Key Laboratory of Unsteady Aerodynamics and Flow Control, Ministry of Industry and Information Technology, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China

2. High Speed Aerodynamic Institute, China Aerodynamics Research and Development Center, Mianyang 621000, China

Abstract

At cryogenic temperatures, gases exhibit significant deviations from ideal behaviour, and the commonly employed gas model may inadequately represent the thermodynamic properties of cryogenic gases, subsequently impacting numerical simulations using various thermodynamic and transport models at cryogenic temperatures. The findings of this study reveal that the relative errors in aerodynamic characteristics obtained through different isentropic relations are noteworthy, with the maximum relative error in the drag coefficient reaching 16%. The impact of the equation of state, viscosity model, and thermal conductivity model is relatively minor, with relative errors in the pressure drag coefficient and viscous drag coefficient remaining well below 1%. Nevertheless, the relative error in the skin friction coefficient cannot be ignored due to transonic shock wave/boundary layer interactions. Consequently, when conducting numerical simulations of cryogenic flow, it is imperative to select appropriate gas models to attain precise results.

Funder

National Numerical Wind Tunnel Project

Publisher

MDPI AG

Subject

Aerospace Engineering

Reference30 articles.

1. Hall, R.M., and Adcock, J.B. (1981). Simulation of Ideal-Gas Flow by Nitrogen and Other Selected Gases at Cryogenic Temperatures.

2. Adcock, J.B., Kilgore, R.A., and Ray, E.J. (1975, January 20–22). Cryogenic nitrogen as a transonic wind-tunnel test gas. Proceedings of the 13th Aerospace Sciences Meeting, Pasadena, CA, USA.

3. Research Initiative for Numerical and Experimental Studies on High-Speed Stall of Civil Aircraft;Lutz;J. Aircr.,2023

4. Prediction and Measurement of the Common Research Model Wake at Stall Conditions;Lutz;J. Aircr.,2016

5. Hensch, A.K., Guntermann, P., Longo, R., Klein, C., Risius, S., Schaber, S., Quest, J., and Okfen, P. (2019, January 7–11). Investigation of Hybrid Laminar Flow Control (HLFC) on a 2D-Model in the Cryogenic Pilot European Transonic Windtunnel (PETW). Proceedings of the AIAA Scitech 2019 Forum, San Diego, CA, USA.

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