...
首页> 外文期刊>Mechanics research communications >A note on the extensional viscosity of elastic liquids under strong flows
【24h】

A note on the extensional viscosity of elastic liquids under strong flows

机译:关于强流动下弹性液体的拉伸粘度的注意事项

获取原文
获取原文并翻译 | 示例
           

摘要

In this article a parametric study based on a balance between viscous drag and restoring Brownian forces is used in order to construct a nonlinear dumbbell model with a finite spring and a drag correction for a dilute polymer solution. The constitutive equations used are reasonable approximation for describing flows of very dilute polymer solutions such as those used in turbulent drag reduction. We investigate the response of an elastic liquid under extensional flows in order to explore the roles of a stress anisotropy and of elasticity in strong flows. It is found that for low Reynolds numbers, the extensional viscosity of a dilute polymer solution is governed by two parameters: a Deborah number representing the importance of the elasticity on the flow and the macromolecule extensibility that accounts for the viscous anisotropic effects caused by the macromolecule orientation. Two different asymptotic regimes are described. The first corresponds to an elastic limit in which the extensional viscosity is a function of the Deborah number and the particle volume fraction. The second is an anisotropic regime with the extensional viscosity independent of Deborah number but strongly dependent on macromolecule aspect ratio. The analysis may explain from a phenomenological point of view why few ppms of macromolecules of high molecule weight or a small volume fraction of long fibres produce important attenuation of the pressure drop in turbulent flows. On the basis of our analysis it is seen that the anisotropic limit of the extensional viscosity caused by extended polymers under strong flows should play a key role in the attenuation of flow instability and in the mechanism of drag reduction by polymer additives. (c) 2005 Published by Elsevier Ltd.
机译:在本文中,基于粘性阻力和恢复布朗力之间的平衡进行了参数研究,目的是构建带有有限弹簧和阻力校正的稀疏聚合物溶液的非线性哑铃模型。所使用的本构方程是合理的近似值,用于描述非常稀的聚合物溶液(例如在湍流减阻中使用的溶液)的流量。为了研究应力各向异性和弹性在强流动中的作用,我们研究了弹性液体在延伸流动下的响应。已发现,对于低雷诺数,稀聚合物溶液的拉伸粘度受两个参数控制:Deborah数代表弹性对流动的重要性,大分子可延展性解释了由大分子引起的粘性各向异性效应方向。描述了两种不同的渐近形式。第一个对应于弹性极限,其中拉伸粘度是Deborah数和颗粒体积分数的函数。第二个是各向异性体系,其拉伸粘度与Deborah数无关,但在很大程度上取决于大分子的长径比。该分析可以从现象学的角度解释为什么高分子量大分子的少量ppm或长纤维的小体积分数对湍流中的压降产生重要的衰减作用。根据我们的分析,可以看出,在强流动下由膨胀的聚合物引起的拉伸粘度的各向异性极限应在减小流动不稳定性和聚合物添加剂减阻机理中起关键作用。 (c)2005年由Elsevier Ltd.发布。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号