Peravali Surya Kiran, Jafari Vahid, Samanta Amit K, Küpper Jochen, Amin Muhamed, Neumann Philipp, Breuer Michael
Professur für Strömungsmechaik, Helmut-Schmidt-Universität / Universität der Bundeswehr Hamburg, 22043 Hamburg, Germany.
Professur für High Performance Computing, Helmut-Schmidt-Universität / Universität der Bundeswehr Hamburg, 22043 Hamburg, Germany.
Comput Fluids. 2024 Jul 30;279. doi: 10.1016/j.compfluid.2024.106346. Epub 2024 Jun 18.
The Direct Simulation Monte Carlo (DSMC) method was widely used to simulate low density gas flows with large Knudsen numbers. However, DSMC encounters limitations in the regime of lower Knudsen numbers . In such cases, approaches from classical computational fluid dynamics (CFD) relying on the continuum assumption are preferred, offering accurate solutions at acceptable computational costs. In experiments aimed at imaging aerosolized nanoparticles a wide range of Knudsen numbers occur, which motivated the present study on the analysis of the advantages and drawbacks of DSMC and CFD simulations of rarefied flows in terms of accuracy and computational effort. Furthermore, the potential of hybrid methods is evaluated. For this purpose, DSMC and CFD simulations of the flow inside a convergent-divergent nozzle (internal expanding flow) and the flow around a conical body (external shock generating flow) were carried out. CFD simulations utilize the software OpenFOAM and the DSMC solution is obtained using the software SPARTA. The results of these simulation techniques are evaluated by comparing them with experimental data (1), evaluating the time-to-solution (2) and the energy consumption (3), and assessing the feasibility of hybrid CFD-DSMC approaches (4).
直接模拟蒙特卡洛(DSMC)方法被广泛用于模拟具有大克努森数的低密度气体流动。然而,DSMC在较低克努森数的情况下会遇到局限性。在这种情况下,依赖连续介质假设的经典计算流体动力学(CFD)方法更受青睐,它能以可接受的计算成本提供精确解。在旨在对雾化纳米颗粒进行成像的实验中,会出现各种克努森数,这促使了本研究对DSMC和CFD模拟稀薄流动在精度和计算量方面的优缺点进行分析。此外,还评估了混合方法的潜力。为此,对收缩-扩张喷嘴内的流动(内部膨胀流动)和圆锥体周围的流动(外部激波生成流动)进行了DSMC和CFD模拟。CFD模拟使用OpenFOAM软件,DSMC解则通过SPARTA软件获得。通过将这些模拟技术的结果与实验数据进行比较(1)、评估求解时间(2)和能量消耗(3)以及评估CFD-DSMC混合方法的可行性(4)来对其进行评估。