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首页> 外文期刊>International Journal of Heat and Mass Transfer >High-order simplified thermal lattice Boltzmann method for incompressible thermal flows
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High-order simplified thermal lattice Boltzmann method for incompressible thermal flows

机译:不可压缩热流的高阶简化热晶格玻尔兹曼方法

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A high-order simplified thermal lattice Boltzmann method (HSTLBM) is developed in this paper for accurate and efficient simulation of incompressible thermal flows. The derivation of HSTLBM stems from the recently developed simplified thermal lattice Boltzmann method (STLBM) and incorporates high-order interpolation algorithms, which reflects an effective combination of local second-order reconstruction and global high-order scheme. By introducing virtual streaming nodes, HSTLBM decouples the streaming distance from the mesh spacing and then correlates them through high-order interpolation scheme. Delicate parametric studies indicate that adopting 5-point Lagrange interpolation and setting the streaming distance as 0.2 times of the mesh spacing could give optimal results which balances computational accuracy, stability, and efficiency well; and third-order of global accuracy can be achieved. HSTLBM inherits various merits of STLBM, especially its nice numerical stability. As a result, HSTLBM can give accurate and stable solutions on coarser meshes for problems at high Reynolds/Rayleigh numbers. Higher efficiency and lower memory cost can thus be expected. A series of benchmark tests are provided for comprehensive evaluation of HSTLBM in modelling two- and three-dimensional problems and on uniformon-uniform meshes.
机译:本文开发了一种高阶简化热晶格玻尔兹曼方法(HSTLBM),用于精确有效地模拟不可压缩的热流。 HSTLBM的推导源于最近开发的简化热晶格玻尔兹曼方法(STLBM),并结合了高阶插值算法,该算法反映了局部二阶重构和全局高阶方案的有效组合。通过引入虚拟流节点,HSTLBM将流距离与网格间距解耦,然后通过高阶插值方案将它们关联起来。精细的参数研究表明,采用5点Lagrange插值并将流距离设置为网格间距的0.2倍可以提供最佳结果,从而很好地平衡计算精度,稳定性和效率。可以达到整体精度的三阶。 HSTLBM继承了STLBM的各种优点,尤其是其良好的数值稳定性。结果,对于高雷诺数/瑞利数下的问题,HSTLBM可以在较粗的网格上提供准确而稳定的解决方案。因此可以期望更高的效率和更低的存储成本。提供了一系列基准测试,可对HSTLBM在建模二维和三维问题以及均匀/非均匀网格上进行综合评估。

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