利用欧姆加热研究宾汉流体沿垂直通道的电渗透蠕动流动

IF 6.8 2区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY
Hubba Umer , M. Mustafa , S. Hina
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引用次数: 0

摘要

在非牛顿流体的蠕动流动中,亚微米颗粒的运输和沉积在生理过程中起着至关重要的作用,如靶向药物输送和生物医学过滤,在这些过程中需要控制颗粒运输。考虑了含粘塑性(宾厄姆)流体的垂直通道内浮力激发的电渗透蠕动运动中的颗粒沉积。假设横向磁场具有均匀强度,并保留由此产生的焦耳加热用于传热分析。边界滑移的施加使轴向速度的边界条件产生非线性。在润滑近似下推导了控制方程,并利用伽利略变换将其转换为波动参考系。控制微分方程是利用集成在Mathematica 12.0中的NDsolve函数进行数值计算的。影响流动动力学的关键参数包括滑移系数、Bingham数、Helmholtz-Smoluchowski速度、Grashof数和磁场强度。有趣的是,边界层在圆柱壁附近形成,考虑屈服应力时边界层变薄。随着流体屈服应力的增加,流体运动显著减速。与之前的工作一致,热泳力增加了颗粒向冷壁的分布。浮力的增强显著影响轴向流场和温度场。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An exploration of electroosmotically inspired peristaltic flow of Bingham fluid along a vertical channel with Ohmic heating
Transport and deposition of submicron particles in peristaltic flows with non-Newtonian fluids play a crucial role in physiological processes such as targeted drug delivery and biomedical filtration, where controlled particle transport is required. Consideration is given to the particle deposition in buoyancy inspired electroosmotic peristaltic motion inside a vertical channel containing viscoplastic (Bingham) fluid. Transverse magnetic field is assumed to have uniform strength and the resulting Joule heating is retained for heat transfer analysis. The imposition of boundary slip produces non-linearity in the boundary conditions for axial velocity. The governing equations are derived under lubrication approximations and transformed to a wave frame of reference using the Galilean transformations. The governing differential equations are numerically computed utilizing the NDsolve function integrated within Mathematica 12.0. Key parameters influencing the flow dynamics include the slip coefficient, Bingham number, Helmholtz–Smoluchowski velocity, Grashof numbers and magnetic field strength. Interestingly, boundary layers form near the cylinder walls which become thinner when yield stress is considered. Fluid motion decelerates significantly upon increasing fluid’s yield stress. In line with pervious works, the thermophoretic force increases particle distribution towards the cold wall. An intensification in the buoyance force markedly affects the axial flow and temperature field.
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来源期刊
alexandria engineering journal
alexandria engineering journal Engineering-General Engineering
CiteScore
11.20
自引率
4.40%
发文量
1015
审稿时长
43 days
期刊介绍: Alexandria Engineering Journal is an international journal devoted to publishing high quality papers in the field of engineering and applied science. Alexandria Engineering Journal is cited in the Engineering Information Services (EIS) and the Chemical Abstracts (CA). The papers published in Alexandria Engineering Journal are grouped into five sections, according to the following classification: • Mechanical, Production, Marine and Textile Engineering • Electrical Engineering, Computer Science and Nuclear Engineering • Civil and Architecture Engineering • Chemical Engineering and Applied Sciences • Environmental Engineering
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