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An extended thermal Lattice Boltzmann model for transition flow

机译:用于过渡流动的扩展热格子Boltzmann模型

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In the last two decades, mathematical models based on the Lattice Boltzmann method have been developed in an effort to accurately capture flow characteristics in rarefied conditions, including thermal effects. In order to improve their performance to characterize fluid conditions for the entire transition flow regime, a new wall-distance function has been developed based on existing Molecular Dynamics data and implemented to a D2Q13 Lattice Boltzmann model. The ability of the improved Lattice Boltzmann model to capture thermal effects on fluid conditions due to heat conduction and convection is demonstrated by simulating rarefied Fourier flow and Couette flow within microano-channels, respectively, and validated against Direct Simulation Monte Carlo data as well as data based on the linearized Boltzmann equation. The results show that the proposed Lattice Boltzmann model is capable of simulating conditions, including thermal effects, in rarefied flow for the entire Knudsen number range representing slip, transition, and the low end of molecular flow regimes.
机译:在过去的二十年中,基于莱迪思·玻耳兹曼(Lattice Boltzmann)方法的数学模型已经开发出来,旨在准确地捕获稀有条件下的流动特性,包括热效应。为了提高其性能以表征整个过渡流态的流体条件,已基于现有的分子动力学数据开发了新的壁距函数,并将其实现为D2Q13格子Boltzmann模型。分别通过模拟微/纳米通道内的稀疏傅里叶流和库埃特流,证明了改进的莱迪思玻尔兹曼模型捕获由于导热和对流引起的流体条件热效应的能力,并且还针对直接模拟蒙特卡洛数据进行了验证基于线性化的玻耳兹曼方程的数据。结果表明,提出的Lattice Boltzmann模型能够在代表滑移,过渡和分子流态的低端的整个Knudsen数范围内模拟稀薄流中的条件,包括热效应。

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