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教授   博士生导师   硕士生导师

任职 : 土木水利实验教学中心(国家级示范中心)主任

性别: 男

毕业院校: 大连理工大学

学位: 博士

所在单位: 土木工程系

学科: 结构工程

办公地点: 土木工程学院(综合实验三号楼)527

联系方式: 0411-84708515-16

电子邮箱: chentg@dlut.edu.cn

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Oscillatory flow regimes around four cylinders in a diamond arrangement

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论文类型: 期刊论文

发表时间: 2019-10-25

发表刊物: JOURNAL OF FLUID MECHANICS

收录刊物: SCIE

卷号: 877

页面范围: 955-1006

ISSN号: 0022-1120

关键字: vortex shedding; wakes; low-Reynolds-number flows

摘要: Oscillatory flow around a cluster of four circular cylinders in a diamond arrangement is investigated using two-dimensional direct numerical simulation over Keulegan-Carpenter numbers (KC) ranging from 4 to 12 and Reynolds numbers (Re) from 40 to 230 at four gap-to-diameter ratios (G) of 0.5, 1, 2 and 4. Three types of flows, namely synchronous, quasi-periodic and desynchronized flows (along with 14 flow regimes) are mapped out in the (G, KC, Re)-parameter space. The observed flow characteristics around four cylinders in a diamond arrangement show a few unique features that are absent in the flow around four cylinders in a square arrangement reported by Tong et al. (J. Fluid Mech., vol. 769, 2015, pp. 298-336). These include (i) the dominance of flow around the cluster-scale structure at and 1, (ii) a substantial reduction of regime D flows in the regime maps, (iii) new quasi-periodic (phase trapping) (referred to as holes hereafter) such as the appearance of spatio-temporal synchronized flows in an area surrounded by a single type of synchronized flow in the regime map The mode competition between the cluster-scale and cylinder-scale flows is identified as the key flow mechanism responsible for those unique flow features, with the support of evidence derived from quantitative analysis. Phase dynamics is introduced for the first time in bluff-body flows, to the best knowledge of the authors, to quantitatively interpret the flow response (e.g. quasi-periodic flow features) around the cluster. It is instrumental in revealing the nature of regime flows where the cluster-scale flow features are largely synchronized with the forcing of incoming oscillatory flow (phase trapping) but are modulated by localized flow features.

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