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首页> 外文期刊>International Journal of Heat and Mass Transfer >Thermal flux simulations by lattice Boltzmann method; investigation of high Richardson number cross flows over tandem square cylinders
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Thermal flux simulations by lattice Boltzmann method; investigation of high Richardson number cross flows over tandem square cylinders

机译:用晶格玻尔兹曼法模拟热通量;方形圆柱上高Richardson数错流的研究

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摘要

Imposing a constant non-zero heat/mass flux at a boundary is of a rather complicated type of problem with severe convergence issues especially in unsteady conditions. The present report, firstly covers the implementation of thermal lattice Boltzmann scheme and the counter-slip thermal energy density approach, to model the constant flux conditions for a typical flow of fluid over heat generating blocks. Analysis of kinetic relations shows that at certain conditions, the inflating density field could result in inconstancy of fluid heat conductivity leading to unacceptable results. Therefore to minimize such effects, density field normalization at the end of each iteration is suggested. Comparing the test case results of the current study with those of macroscopic finite volume approach in the literature, reveals the promising accuracy of the present method. Secondly, the previously unexplored problem of steady and unsteady mixed convection over inline tandem square cylinders with a constant heat flux at the block boundary is investigated. Due to the employment of Neumann thermal boundary condition on the blocks, modified Richardson number is introduced and its consistency with the conventional definition is checked. Detailed results of the study for 10 < Reynolds < 100, blockage ratios of 1/3,1/4,1/5 and 1/8 and modified Richardson numbers of 0.0, 0.5 and 1.0 are presented. The intense of the superimposed buoyance force (defined by modified Richardson number) and its impact on the onset of vortex shedding and the global quantities such as lift and drag coefficients and Nusselt number is also carefully explored.
机译:在边界处施加恒定的非零热/质量通量是相当复杂的问题,尤其是在不稳定条件下,存在严重的收敛问题。本报告首先介绍了热晶格玻尔兹曼方案的实施和反滑热能密度方法,以模拟在生热块上的典型流体流动的恒定通量条件。动力学关系分析表明,在某些条件下,膨胀密度场可能导致流体导热系数不稳定,从而导致结果不可接受。因此,为了最小化此类影响,建议在每次迭代结束时对密度场进行归一化。将当前研究的测试用例结果与宏观有限体积方法的结果进行比较,揭示了本方法的前景广阔。其次,研究了在块边界处具有恒定热通量的直列串联方筒上稳态和非稳态混合对流的先前尚未探索的问题。由于在块体上采用了Neumann热边界条件,因此引入了修改的Richardson数,并检查了其与常规定义的一致性。给出了10 <雷诺<100的研究结果,阻塞率分别为1 / 3、1 / 4、1 / 5和1/8,修正的Richardson数为0.0、0.5和1.0。还仔细研究了叠加浮力的强度(由修正的Richardson数定义)及其对涡旋脱落开始的影响以及升力,阻力系数和Nusselt数之类的整体量。

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