首页> 外文期刊>International Journal of Heat and Mass Transfer >A Non-Dimensional Lattice Boltzmann Method for direct and porous medium model simulations of 240-tube bundle heat exchangers in a solar storage tank
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A Non-Dimensional Lattice Boltzmann Method for direct and porous medium model simulations of 240-tube bundle heat exchangers in a solar storage tank

机译:无量纲格子Boltzmann方法用于太阳能储罐中240管束式换热器的直接和多孔介质模型模拟

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摘要

An improved Non-Dimensional Lattice Boltzmann Method (NDLBM) is developed and a uniform computational code is compiled to fit into both direct and porous medium model simulations. Comparison studies based on natural convection of 240 cylindrical tube bundle heat exchangers immersed in a thin rectangular solar storage tank show the computational efficiency and accuracy of both direct simulations and porous medium model simulations achieved by using NDLBM. The governing parameters in the macroscopic, microscopic, and mesoscopic length scales corresponding to the enclosure width, tube diameter, and mesh size are obtained. Transient isotherms, streamlines, Nusselt numbers, and CPU time of nine models have been simulated for various pitch, porosity, and distributions of tubes. Given the same grid number and simulation time, the CPU time of the porous medium model simulations by using NDLBM is about 1/60 of that of porous medium simulations by using finite difference based on projection method, and 1/20 of that of the direct simulations with the uniform code based on NDLBM. The porous medium simulations can only obtain Darcy velocity and volume averaged temperature, while the direct simulations can obtain both macroscopic and microscopic velocity and temperature.
机译:开发了一种改进的无量纲格子玻尔兹曼方法(NDLBM),并编译了统一的计算代码以适合直接和多孔介质模型仿真。基于将240个圆柱管束式换热器浸入薄矩形太阳能储罐中的自然对流的比较研究表明,使用NDLBM进行的直接模拟和多孔介质模型模拟的计算效率和准确性。获得了与外壳宽度,管子直径和筛孔尺寸相对应的宏观,微观和介观长度尺度的控制参数。已经针对九种模型的瞬态等温线,流线,努塞尔数和CPU时间对各种螺距,孔隙率和管的分布进行了仿真。在相同的网格数和模拟时间的情况下,使用NDLBM进行的多孔介质模型模拟的CPU时间约为使用基于投影方法的有限差分进行的多孔介质模拟的CPU时间的1/60,是直接方法的1/20基于NDLBM的统一代码进行仿真。多孔介质模拟只能获得达西速度和体积平均温度,而直接模拟可以同时获得宏观和微观速度和温度。

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