首页> 外文期刊>Journal of Fluid Mechanics >Two-dimensional numerical study of vortex shedding regimes of oscillatory flow past two circular cylinders in side-by-side and tandem arrangements at low Reynolds numbers
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Two-dimensional numerical study of vortex shedding regimes of oscillatory flow past two circular cylinders in side-by-side and tandem arrangements at low Reynolds numbers

机译:低雷诺数下并排和串联排列的绕过两个圆柱体的振荡流的涡旋脱落形式的二维数值研究

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Oscillatory flow past two circular cylinders in side-by-side and tandem arrangements at low Reynolds numbers is simulated numerically by solving the two-dimensional Navier-Stokes (NS) equations using a finite-element method (FEM). The aim of this study is to identify the flow regimes of the two-cylinder system at different gap arrangements and Keulegan-Carpenter numbers (KC). Simulations are conducted at seven gap ratios G (G=L/D where L is the cylinder-to-cylinder gap and D the diameter of a cylinder) of 0.5, 1, 1.5, 2, 3, 4 and 5 and KC ranging from 1 to 12 with an interval of 0.25. The flow regimes that have been identified for oscillatory flow around a single cylinder are also observed in the two-cylinder system but with different flow patterns due to the interactions between the two cylinders. In the side-by-side arrangement, the vortex shedding from the gap between the two cylinders dominates when the gap ratio is small, resulting in the gap vortex shedding (GVS) regime, which is different from any of the flow regimes identified for a single cylinder. For intermediate gap ratios of 1.5 and 2 in the side-by-side arrangement, the vortex shedding mode from one side of each cylinder is not necessarily the same as that from the other side, forming a so-called combined flow regime. When the gap ratio between the two cylinders is sufficiently large, the vortex shedding from each cylinder is similar to that of a single cylinder. In the tandem arrangement, when the gap between the two cylinders is very small, the flow regimes are similar to that of a single cylinder. For large gap ratios in the tandem arrangement, the vortex shedding flows from the gap side of the two cylinders interact and those from the outer sides of the cylinders are less affected by the existence of the other cylinder and similar to that of a single cylinder. Strong interaction between the vortex shedding flows from the two cylinders makes the flow very irregular at large KC values for both side-by-side and tandem arrangements.
机译:通过使用有限元方法(FEM)求解二维Navier-Stokes(NS)方程,数值模拟了在低雷诺数下并排和串联布置的两个圆柱体的振荡流动。这项研究的目的是确定在不同间隙排列和Keulegan-Carpenter数(KC)下的两缸系统的流动状态。以七个间隙比G(G = L / D,其中L为气缸与气缸的间隙,D为气缸的直径)进行仿真,间隙比为0.5、1、1.5、2、3、4和5,KC为1至12,间隔为0.25。在两缸系统中,也观察到了已确定用于绕单个缸振荡流动的流态,但是由于两个缸之间的相互作用,流态不同。在并排布置中,当间隙比较小时,两个圆柱体之间的间隙中的涡旋脱落占主导地位,从而导致间隙涡旋脱落(GVS)形式,这不同于为任何一个确定的流动形式。单缸。对于在并排布置中的1.5和2的中间间隙比,从每个圆柱体的一侧的涡旋脱落模式不必与从另一侧的涡旋脱落模式相同,从而形成了所谓的联合流态。当两个圆柱体之间的间隙比足够大时,从每个圆柱体脱落的涡流与单个圆柱体的涡流相似。在串联布置中,当两个气缸之间的间隙很小时,其流动方式类似于单个气缸。对于串联布置中较大的间隙比,来自两个圆柱体间隙侧的涡旋脱落流相互影响,并且来自另一个圆柱体外侧的涡流脱落流受到另一个圆柱体存在的影响较小,类似于单个圆柱体。来自两个气缸的涡流脱落流之间的强相互作用使得在并排和串联布置的大KC值下,该流非常不规则。

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