A Non-Intrusive DSMC-FEM Coupling Method for Two-Dimensional Conjugate Heat Transfer in Rarefied Hypersonic Conditions
Abstract
1. Introduction
2. Numerical Model Description
2.1. The DSMC Method for Gas Flows
2.2. The Finite Element Method for Heat Conduction
2.3. Coupling Method
3. Validation Tests
3.1. Rarefied Hypersonic Flow Around a Finite Rectangular Flat Plate
3.2. Hypersonic Flow over a Flat-Nosed Cylinder
3.3. 2D Hypersonic Flow Past a Cylinder
4. Conclusions and Future Works
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| density | |
| u | velocity conponet in the x direction |
| T | temperature |
| q | heat flux |
| k | thermal conductivity |
| specific heat capacity | |
| term of heat source | |
| x | spatial cartesian coordinate |
| t | time |
| Fourier number | |
| Ma | Mach number |
| Kn | Knudsen number |
| ∞ | free stream properties |
| CHT | Conjugate Heat Transfer |
| FEM | Finite Element Method |
| FDM | Finite Difference Method |
| PDE | Partial Differential Equation |
| DSMC | Direct Simulation Monte Carlo |
References
- Girija, A.P. Comparative Study of Planetary Atmospheres and Implications for Atmospheric Entry Missions. arXiv 2023, arXiv:2307.16277. [Google Scholar] [CrossRef]
- Lysenko, O.I.; Sparavalo, M.K.; Tachinina, O.M.; Yavisya, V.S.; Ponomarenko, S.O. Feasibility reasoning of creating ultra-low orbit communication systems based on small satellites and method of their orbits designing. Inf. Telecommun. Sci. 2020, 11, 59–70. [Google Scholar] [CrossRef]
- Leomanni, M.; Bianchini, G.; Garulli, A.; Quartullo, R.; Scortecci, F. Optimal low-thrust orbit transfers made easy: A direct approach. J. Spacecr. Rockets 2021, 58, 1904–1914. [Google Scholar] [CrossRef]
- Cao, Z.; White, C.; Kontis, K. Numerical investigation of rarefied vortex loop formation due to shock wave diffraction with the use of rorticity. Phys. Fluids 2021, 33, 067112. [Google Scholar] [CrossRef]
- Ferrero, P.; D’Ambrosio, D. A numerical method for conjugate heat transfer problems in hypersonic flows. In Proceedings of the 40th Thermophysics Conference, Seattle, WA, USA, 23–26 June 2008; p. 4247. [Google Scholar]
- Peetala, R.K.; Kulkarni, V.; Sahoo, N. Shock wave boundary layer interactions in hypersonic flows over a double wedge geometry by using conjugate heat transfer. Heat Transf. 2021, 1, 801–817. [Google Scholar] [CrossRef]
- Buck, A. Conjugate Heat Transfer Simulations for Hypersonic Flight. Ph.D. Thesis, Universität der Bundeswehr München, Neubiberg, Germany, 2024. [Google Scholar]
- Zhang, S.; Chen, F.; Liu, H. Time-adaptive, loosely coupled strategy for conjugate heat transfer problems in hypersonic flows. J. Thermophys. Heat Transf. 2014, 28, 635–646. [Google Scholar] [CrossRef]
- Zhou, D.; Lu, Z.; Guo, T.; Chen, G. A loosely-coupled gas-kinetic BGK scheme for conjugate heat transfer in hypersonic flows. Int. J. Heat Mass Transf. 2020, 147, 119016. [Google Scholar] [CrossRef]
- Maxwell, J.C. On stresses in Rarefied Gases Arising from Inequalities of Temperature. Philos. Trans. R. Soc. Lond. 1879, 170, 231–256. [Google Scholar]
- von Smoluchowski, M. Ueber wärmeleitung in verdünnten Gasen. Ann. Phys. Chem. 1898, 64, 101–130. [Google Scholar] [CrossRef]
- Alkhalidi, A.; Kiwan, S.; Al-Kouz, W.; Alshare, A. Conjugate heat transfer in rarefied gas in enclosed cavities. Vacuum 2016, 130, 137–145. [Google Scholar] [CrossRef]
- Kabar, Y.; Bessaïh, R.; Rebay, M. Conjugate heat transfer with rarefaction in parallel plates microchannel. Superlattices Microstruct. 2013, 60, 370–388. [Google Scholar] [CrossRef]
- Samiana, R.; Abbassia, A.; Ghazanfarian, J. High-Knudsen Conjugate Heat Transfer in Micro/Nano-Channels for use in microelectronic devices: Thermal Lattice Boltzmann Study. In Proceedings of the 6th International Conference on Nanostructures, Kish Island, Iran, 7–10 March 2016. [Google Scholar]
- Van Heumen, J.M.W. Numerical Study on Conjugate Heat Transfer Between Rarefied Gases and a Solid Using the Method of Moments. Master’s Thesis, Eindhoven University of Technology, Eindhoven, The Netherlands, 2021. [Google Scholar]
- Sohn, I.; Li, Z.; Levin, D.A.; Modest, M.F. Coupled DSMC-PMC radiation simulations of a hypersonic reentry. J. Thermophys. Heat Transf. 2012, 25, 22–35. [Google Scholar] [CrossRef]
- Weinberg, M.D. Direct simulation Monte Carlo for astrophysical flows–I. Motivation and methodology. Mon. Not. R. Astron. Soc. 2014, 438, 2995–3006. [Google Scholar] [CrossRef]
- Moghadam, E.; Roohi, E.; Esfahani, J. Heat transfer and fluid characteristics of rarefied flow in thermal cavities. Vacuum 2014, 109, 333–340. [Google Scholar] [CrossRef]
- Appar, A.; Kumar, R.; Naspoori, S.K. Conjugate flow-thermal analysis of a hypersonic reentry vehicle in the rarefied flow regime. Phys. Fluids 2022, 34, 026107. [Google Scholar] [CrossRef]
- Idelsohn, S.R. Numerical Simulations of Coupled Problems in Engineering; Springer: Berlin/Heidelberg, Germany, 2014. [Google Scholar]
- Uekermann, B.W. Partitioned Fluid-Structure Interaction on Massively Parallel Systems. Ph.D. Thesis, Technische Universität München, München, Germany, 2016. [Google Scholar]
- Besseron, X.; Adhav, P.; Peters, B. Parallel multi-physics coupled simulation of a midrex blast furnace. In Proceedings of the International Conference on High Performance Computing in Asia-Pacific Region Workshops, Nagoya, Japan, 25–27 January 2024; pp. 87–98. [Google Scholar]
- Adhav, P.; Besseron, X.; Peters, B. Development of 6-way CFD-DEM-FEM momentum coupling interface using partitioned coupling approach. Results Eng. 2024, 22, 102214. [Google Scholar] [CrossRef]
- Chourdakis, G.; Davis, K.; Rodenberg, B.; Schulte, M.; Simonis, F.; Uekermann, B.; Abrams, G.; Bungartz, H.; Yau, L.C.; Desai, I.; et al. preCICE v2: A sustainable and user-friendly coupling library. Open Res. Eur. 2022, 2, 51. [Google Scholar] [CrossRef]
- Chourdakis, G.; Schneider, D.; Uekermann, B. OpenFOAM-preCICE: Coupling OpenFOAM with external solvers for multi-physics simulations. OpenFOAM J. 2023, 3, 1–25. [Google Scholar] [CrossRef]
- Rodenberg, B.; Desai, I.; Hertrich, R.; Jaust, A.; Uekermann, B. FEniCS–preCICE: Coupling FEniCS to other simulation software. SoftwareX 2021, 16, 100807. [Google Scholar] [CrossRef]
- Economon, T.D.; Palacios, F.; Copeland, S.R.; Lukaczyk, T.W.; Alonso, J.J. SU2: An open-source suite for multiphysics simulation and design. AIAA J. 2016, 54, 828–846. [Google Scholar] [CrossRef]
- Uekermann, B.; Bungartz, H.; Yau, L.C.; Chourdakis, G.; Rusch, A. Official preCICE adapters for standard open-source solvers. In Proceedings of the 7th GACM Colloquium on Computational Mechanics for Young Scientists from Academia, Stuttgart, Germany, 11–13 October 2017. [Google Scholar]
- preCICE Release. 2025. Available online: https://github.com/precice/precice/releases/tag/v3.3.0 (accessed on 16 November 2025).
- Bird, G.A. Molecular Gas Dynamics and the Direct Simulation of Gas Flows; Oxford University Press: Oxford, UK, 1994. [Google Scholar]
- Bird, G.A. Monte Carlo simulation of gas flows. Annu. Rev. Fluid Mech. 1978, 10, 11–31. [Google Scholar] [CrossRef]
- Plimpton, S.J.; Moore, S.G.; Borner, A.; Stagg, A.K.; Koehler, T.P.; Torczynski, J.R.; Gallis, M.A. Direct simulation Monte Carlo on petaflop supercomputers and beyond. Phys. Fluids 2019, 31, 086101. [Google Scholar] [CrossRef]
- SPARTA Official Website. 2025. Available online: https://sparta.github.io/ (accessed on 16 November 2025).
- Klothakis, A.; Nikolos, I.K. Comprehensive Evaluation of the Massively Parallel Direct Simulation Monte Carlo Kernel “Stochastic Parallel Rarefied-Gas Time-Accurate Analyzer” in Rarefied Hypersonic Flows—Part A: Fundamentals. Computation 2024, 12, 198. [Google Scholar] [CrossRef]
- Nikishkov, G.P. Introduction to the Finite Element Method; University of Aizu: Aizuwakamatsu, Japan, 2004. [Google Scholar]
- Zienkiewicz, O.C.; Taylor, R.L.; Zhu, J.Z. The Finite Element Method: Its Basis and Fundamentals; Elsevier: Amsterdam, The Netherlands, 2005. [Google Scholar]
- Cengel, Y.A.; Ghajar, A.J. Heat and Mass Transfer (in SI Units); Mcgraw-Hill Education-Europe: London, UK, 2014. [Google Scholar]
- Whitaker, S. Fundamental Principles of Heat Transfer; Elsevier: Amsterdam, The Netherlands, 2013. [Google Scholar]
- Alnæs, M.; Blechta, J.; Hake, J.; Johansson, A.; Kehlet, B.; Logg, A.; Richardson, C.; Ring, J.; Rognes, M.E.; Wells, G.N. The FEniCS project version 1.5. Arch. Numer. Softw. 2015, 3, 100. [Google Scholar]
- The preCICE Documentation. 2025. Available online: https://precice.org/docs.html (accessed on 16 November 2025).
- Klothakis, A.; Nikolos, I.K. Modeling of rarefied hypersonic flows using the massively parallel DSMC kernel SPARTA. In Proceedings of the 8th International Congress on Computational Mechanics, Athens, Greece, 12–15 July 2015. [Google Scholar]
- Allegre, J.; Raffin, M.; Chpoun, A.; Gottesdiener, L. Rarefied hypersonic flow over a flat plate with truncated leading edge. Prog. Astronaut. Aeronaut. 1994, 160, 285. [Google Scholar]
- Technical Data for Copper. Available online: https://periodictable.com/Elements/029/data.html (accessed on 16 November 2025).
- Fu, R.; Weng, H.; Wenk, J.F.; Martin, A. Thermomechanical coupling for charring ablators. J. Thermophys. Heat Transf. 2018, 32, 369–379. [Google Scholar] [CrossRef]
- 1D Heat Conduction Solver. 2019. Available online: https://github.com/rickfu415/heatConduction (accessed on 16 November 2025).
- Scanlon, T.J.; Roohi, E.; White, C.; Darbandi, M.; Reese, J.M. An open source, parallel DSMC code for rarefied gas flows in arbitrary geometries. Comput. Fluids 2010, 39, 2078–2089. [Google Scholar] [CrossRef]
- Lofthouse, A.J.; Boyd, I.D.; Wright, M.J. Effects of continuum breakdown on hypersonic aerothermodynamics. Phys. Fluids 2007, 19, 027105. [Google Scholar] [CrossRef]
- Goshayeshi, B.; Roohi, E.; Stefanov, S. A novel simplified Bernoulli trials collision scheme in the direct simulation Monte Carlo with intelligence over particle distances. Phys. Fluids 2015, 27, 107104. [Google Scholar] [CrossRef]
- Darbandi, M.; Roohi, E. A hybrid DSMC/Navier–Stokes frame to solve mixed rarefied/nonrarefied hypersonic flows over nano-plate and micro-cylinder. Int. J. Numer. Methods Fluids 2013, 72, 937–966. [Google Scholar] [CrossRef]
- Lofthouse, A.J. Nonequilibrium Hypersonic Aerothermodynamics Using the Direct Simulation Monte Carlo and Navier-Stokes Models. Ph.D. Thesis, University of Michigan, Ann Arbor, MI, USA, 2008. [Google Scholar]
- Vasileiadis, N.; White, C. hybridDCFoam: A coupled DSMC/Navier–Stokes–Fourier solver for steady-state multiscale rarefied gas flows. Adv. Eng. Softw. 2024, 193, 103669. [Google Scholar] [CrossRef]
















Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Cao, Z.; Ma, C. A Non-Intrusive DSMC-FEM Coupling Method for Two-Dimensional Conjugate Heat Transfer in Rarefied Hypersonic Conditions. Aerospace 2025, 12, 1021. https://doi.org/10.3390/aerospace12111021
Cao Z, Ma C. A Non-Intrusive DSMC-FEM Coupling Method for Two-Dimensional Conjugate Heat Transfer in Rarefied Hypersonic Conditions. Aerospace. 2025; 12(11):1021. https://doi.org/10.3390/aerospace12111021
Chicago/Turabian StyleCao, Ziqu, and Chengyu Ma. 2025. "A Non-Intrusive DSMC-FEM Coupling Method for Two-Dimensional Conjugate Heat Transfer in Rarefied Hypersonic Conditions" Aerospace 12, no. 11: 1021. https://doi.org/10.3390/aerospace12111021
APA StyleCao, Z., & Ma, C. (2025). A Non-Intrusive DSMC-FEM Coupling Method for Two-Dimensional Conjugate Heat Transfer in Rarefied Hypersonic Conditions. Aerospace, 12(11), 1021. https://doi.org/10.3390/aerospace12111021

