
CLC number: O35
On-line Access: 2024-08-27
Received: 2023-10-17
Revision Accepted: 2024-05-08
Crosschecked: 2018-04-13
Cited: 0
Clicked: 7299
Xiao-di Wu, Hua-ping Liu, Fu Chen. Numerical investigation of flow characteristics around two side-by-side cylinders by immersed boundary-lattice Boltzmann flux solver[J]. Journal of Zhejiang University Science A,in press.Frontiers of Information Technology & Electronic Engineering,in press.https://doi.org/10.1631/jzus.A1700112 @article{title="Numerical investigation of flow characteristics around two side-by-side cylinders by immersed boundary-lattice Boltzmann flux solver", %0 Journal Article TY - JOUR
Abstract: In this paper the authors carried out a numerical study on the flow characteristics around two side by side cylinders by using the immersed boundary lattice Boltzmann flux solver (IB-LBFS). The IB-LBFS applied in this work was first validated through several numerical examples. After that, both of the stationary and rotating cylinders in flows at low Reynolds numbers were considered. The effects of gap ratios between the cylinders and Reynolds numbers on the flow pattern, vortex structures and forces were well compared. As a new alternative method for CFD, it is quite interesting to see new successfully applications of the IB-LBFS to flow problems with complex geometries and moving boundaries.
基于浸入边界-格子波尔兹曼通量求解法的并列双圆柱流动特性数值研究创新点:1. 将浸入边界法与格子波尔兹曼求解法相结合,简单并高效地实现在非均匀直角网格下求解不可压流动以及动边界问题;2. 应用浸入边界-格子波尔兹曼求解法研究并列双圆柱流场特性。 方法:1. 通过理论推导,建立状态变量和通量与格子波尔兹曼方程中粒子密度分布函数之间的关系(公式(8)~(10));2. 采用强制浸入边界法处理流固界面使固壁表面满足无滑移边界条件,实现在笛卡尔网格下求解运动边界问题;3. 通过数值模拟,探讨雷诺数和圆柱间距对静止双圆柱受力及流场尾流特性的影响以及雷诺数、间距和旋转速度对旋转并列双圆柱受力及尾流特性的影响规律。 结论:1. 浸入边界-格子波尔兹曼求解法可以简单实现采用非贴体网格求解不可压流动及动边界问题。2. 对于并列静止双圆柱,随着间距的增加,双圆柱尾流场的相互作用逐渐消失,尾迹由无规则性转变为规则的同相位流动或反向流动;雷诺数影响圆柱受力系数。3. 对于并列旋转双圆柱,雷诺数对旋转圆柱受力影响较弱;旋转速度可以抑制单圆柱尾流场的非定常效应;随着圆柱间距的增加,双圆柱后方形成固定的相位关系以及同一频率的脱落涡。 关键词组: Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article
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