Flow of Dilute Polymer Solutions Through a Channel with a Large Obstacle at Small Reynolds Numbers

IF 1.3 4区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY
I. Yu. Kardash, S. V. Filatov, A. A. Levchenko
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引用次数: 0

Abstract

The addition of even small quantities of high-molecular-weight polymers can significantly alter the rheological properties of a fluid. When subjected to shear flow, polymers stretch, imparting elasticity to the fluid. At low Reynolds numbers, elastic forces may dominate over inertial effects. In this study, the pressure difference between two points in the channel and the average mass flow of fluid (with the average velocity \(\langle {v}\rangle \)) have been measured in an obstacle-laden channel (channel with a width of 2.5 mm, a height of 1 mm and a vertically oriented cylindrical obstacle with a diameter \(d = 1\) mm in the center of the channel). Beyond the critical Weissenberg number Wi \( = \lambda \langle {v}\rangle {\text{/}}d\) (where \(\lambda \) is the longest relaxation time), the friction factor (calculated from the pressure difference and average flow) rose above laminar flow values which is concurrent with enhanced fluctuations in the pressure differential between two measurement points. Spectral analysis of pressure fluctuation dynamics has been performed to characterize these effects. The results demonstrate that polymers achieve a highly stretched conformation, reflected in pronounced viscoelastic behavior.

Abstract Image

稀聚合物溶液在小雷诺数下通过大障碍物通道的流动
即使少量加入高分子量聚合物也能显著改变流体的流变性能。当受到剪切流动时,聚合物拉伸,赋予流体弹性。在低雷诺数下,弹性力可能会超过惯性效应。本研究在有障碍物的通道中(通道宽度为2.5 mm,高度为1mm,通道中心有直径为\(d = 1\) mm的垂直圆柱形障碍物),测量了通道内两点间的压力差和流体的平均质量流量(平均流速为\(\langle {v}\rangle \))。在临界Weissenberg数Wi \( = \lambda \langle {v}\rangle {\text{/}}d\)(其中\(\lambda \)为最长松弛时间)之后,摩擦系数(由压差和平均流量计算)高于层流值,同时两个测点之间的压差波动增强。对压力波动动力学进行了频谱分析,以表征这些影响。结果表明,聚合物达到高度拉伸构象,反映在明显的粘弹性行为。
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来源期刊
JETP Letters
JETP Letters 物理-物理:综合
CiteScore
2.40
自引率
30.80%
发文量
164
审稿时长
3-6 weeks
期刊介绍: All topics of experimental and theoretical physics including gravitation, field theory, elementary particles and nuclei, plasma, nonlinear phenomena, condensed matter, superconductivity, superfluidity, lasers, and surfaces.
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