受流体滑移影响的同心旋转球体之间的幂律流体环形流动

IF 1.5 4区 工程技术 Q3 MECHANICS
Hsin-Fu Huang, Po-Han Tseng
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引用次数: 0

摘要

我们报告了非牛顿幂律流体在一对以不同角速度旋转的同心球面之间的环形空间中流动问题的解析解,这对同心球面的内壁和外壁边界受制于一般的非对称流体力学滑移条件。由于在线性化运动滑移条件中假设了恒定值表观流体动力滑移长度,因此可以求得分析解,而且我们的解可以与之前文献中报道的牛顿流体、无滑移条件或单一旋转球体的极限结果进行验证。全面系统的参数研究表明(除了幂律流体流动行为指数外)内表面的流体动力滑移程度是决定内球所受粘性力矩极限值的主要因素,因为外球与内球的半径比会明显变大。然而,随着内外侧半径比在小到中等范围内的增加,流动行为指数和外侧滑移长度被证明是导致各种扭矩响应的关键参数,可以用一个简洁的分析表达式对其进行分类。我们提出了一种标准,用于确定给定幂律流动行为指数的适当滑移长度和外内径比组合,从而最大限度地减少或消除外表面的流体动力滑移壁效应。我们还提出了一种简单的方法,利用同心旋转球粘度计来描述和量化表观流体滑移效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Power-law fluid annular flows between concentric rotating spheres subject to hydrodynamic slip
We report analytical solutions to the problem of non-Newtonian power-law fluid flows in the annular space between a pair of concentric spherical surfaces rotating at distinct angular velocities with the inner and outer wall boundaries subject to general asymmetric hydrodynamic slip conditions. Analytical solutions are possible because of assuming constant valued apparent hydrodynamic slip lengths in the linearized kinematic slip conditions, and our solutions can be validated against the limiting results of Newtonian fluids, no-slip conditions, or a single rotating sphere reported in previous literature. Comprehensive systematic parametric studies show that (additional to the power-law fluid flow behavior index) the degree of hydrodynamic slip at the inner surface is the dominant factor that determines the limiting values of the viscous torque exerted on the inner sphere as the outer-to-inner radius ratio assumes significantly large values. Nonetheless, the flow behavior index and outer slip length prove to be the crucial key parameters responsible for a variety of torque responses, which can be categorized by a compact analytical expression, as the outer-to-inner radius ratio is increased in the small to moderate regime. We propose a criteria which identifies the proper slip length and outer-to-inner radius ratio combinations for a given power-law flow behavior index such that the hydrodynamic slip wall effects of the outer surface can be minimized or eliminated. A simple method is also presented to characterize and quantify the apparent hydrodynamic slip effects by use of the concentric rotating spheres viscometer.
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来源期刊
Journal of Mechanics
Journal of Mechanics 物理-力学
CiteScore
3.20
自引率
11.80%
发文量
20
审稿时长
6 months
期刊介绍: The objective of the Journal of Mechanics is to provide an international forum to foster exchange of ideas among mechanics communities in different parts of world. The Journal of Mechanics publishes original research in all fields of theoretical and applied mechanics. The Journal especially welcomes papers that are related to recent technological advances. The contributions, which may be analytical, experimental or numerical, should be of significance to the progress of mechanics. Papers which are merely illustrations of established principles and procedures will generally not be accepted. Reports that are of technical interest are published as short articles. Review articles are published only by invitation.
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