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Modelling Thermally Induced Non-Equilibrium Gas Flows by Coupling Kinetic and Extended Thermodynamic Methods

机译:通过耦合动力学和扩展热力学方法对热引起的非平衡气流建模

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Thermally induced non-equilibrium gas flows have been simulated in the present study by coupling kinetic and extended thermodynamic methods. Three different types of thermally induced gas flows, including temperature-discontinuity- and temperature-gradient-induced flows and radiometric flow, have been explored in the transition regime. The temperature-discontinuity-induced flow case has shown that as the Knudsen number increases, the regularised 26 (R26) moment equation system will gradually loss its accuracy and validation. A coupling macro- and microscopic approach is employed to overcome these problems. The R26 moment equations are used at the macroscopic level for the bulk flow region, while the kinetic equation associated with the discrete velocity method (DVM) is applied to describe the gas close to the wall at the microscopic level, which yields a hybrid DVM/R26 approach. The numerical results have shown that the hybrid DVM/R26 method can be faithfully used for the thermally induced non-equilibrium flows. The proposed scheme not only improves the accuracy of the results in comparison with the R26 equations, but also extends their capability with a wider range of Knudsen numbers. In addition, the hybrid scheme is able to reduce the computational memory and time cost compared to the DVM.
机译:通过耦合动力学和扩展热力学方法,在本研究中模拟了热诱导的非平衡气流。在过渡过程中,研究了三种不同类型的热诱导气流,包括温度不连续和温度梯度引起的气流以及辐射流。温度不连续性引起的流动情况表明,随着Knudsen数的增加,正则化26(R26)矩方程系统将逐渐失去其准确性和有效性。宏观和微观的耦合方法被用来克服这些问题。 R26矩方程在宏观水平上用于整体流动区域,而动力学方程与离散速度法(DVM)相关联,用于在微观水平上描述靠近壁的气体,从而产生混合DVM / R26方法。数值结果表明,混合DVM / R26方法可以忠实地用于热诱导的非平衡流。所提出的方案不仅与R26方程相比提高了结果的准确性,而且通过更大范围的Knudsen数扩展了其能力。此外,与DVM相比,混合方案能够减少计算内存和时间成本。

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