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首页> 外文期刊>Bulletin of the American Physical Society >APS -70th Annual Meeting of the APS Division of Fluid Dynamics- Event - Elasto-inertial turbulence in straight pipes at low Reynolds numbers
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APS -70th Annual Meeting of the APS Division of Fluid Dynamics- Event - Elasto-inertial turbulence in straight pipes at low Reynolds numbers

机译:APS-流体动力学APS部门第70届年会-事件-低雷诺数的直管中的弹性惯性湍流

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An early point of contention in the study of polymer drag reduction had been whether polymers delay transition to turbulence or cause it to occur at earlier Reynolds numbers (Re). Recent results have shown that at low polymer concentrations, the subcritical transition to Newtonian type turbulence (NTT) is delayed; however at higher concentrations an elastic instability is encountered which results in a distinct flow state dubbed elasto-inertial turbulence (EIT). Here transition is continuous, fluctuation and friction levels are considerably lower than those for NTT and flow structures are qualitatively different. Several factors can influence the necessary Re for transition to occur for a specific polymer concentration; these include the type of polymer, its molecular weight, the solution viscosity and the proximity of the wall boundaries. By controlling these factors, we have found that chaotic motions can be measured at Re of the order of 1 even in straight smooth pipes as opposed to curved microchannels where curved streamlines cause a purely elastic instability. Furthermore we found that low-Re EIT is closely connected to turbulence that exists on the maximum drag reduction asymptote for polymer solutions with Re several orders of magnitude higher.
机译:聚合物减阻研究的一个较早争论的焦点是聚合物是否延迟转变为湍流或使其以较早的雷诺数(Re)发生。最近的结果表明,在低聚合物浓度下,亚临界向牛顿型湍流(NTT)的转变被延迟了。但是,在较高浓度下会遇到弹性不稳定性,从而导致形成独特的流动状态,称为弹性惯性湍流(EIT)。在此过渡是连续的,波动和摩擦水平明显低于NTT,并且流动结构在质量上有所不同。有几个因素会影响特定聚合物浓度下发生过渡所需的Re值;这些因素包括聚合物的类型,分子量,溶液粘度和壁边界的接近程度。通过控制这些因素,我们发现即使在平直的光滑管道中,与弯曲的流线引起纯弹性不稳定性的弯曲微通道相反,也可以在Re的数量级Re上测量混沌运动。此外,我们发现,低Re EIT与湍流密切相关,湍流存在于Re高出几个数量级的聚合物溶液的最大减阻渐近线上。

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