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多孔介质效应对发散通道中粘弹性流体的纤毛辅助流动的影响。

Cilia-assisted flow of viscoelastic fluid in a divergent channel under porosity effects.

机构信息

Department of Mathematics, Northern University, Wattar-Walli Road, Nowshera, 24110, KPK, Pakistan.

College of Engineering, Department of Mechanical Engineering, Prince Sattam bin Abdulaziz University, Alkharj, 16273, Saudi Arabia.

出版信息

Biomech Model Mechanobiol. 2021 Aug;20(4):1399-1412. doi: 10.1007/s10237-021-01451-7. Epub 2021 Mar 28.

Abstract

Cilia-driven laminar flow of an incompressible viscoelastic fluid in a divergent channel has been conducted numerically using the BVP4C technique. The non-Newtonian Jeffrey rheological model is utilized to characterize the fluid. The flow equations are formulated in a curvilinear coordinate system, and the porosity effects are simulated with a body force term in the Navier-Stokes equation. The flow equations are transformed into a wave frame from a fixed frame of reference using a linear mathematical relationship. A biological approximation of creeping phenomena and the long-wavelength assumption is used in the flow analysis. The flow analysis is carried out by using a complex (wavy) propulsion of cilia beating. The two-dimensional flow is controlled by physical parameters-Darcy's number, curvature parameter, viscoelastic parameter, phase difference, cilia length, and divergent parameter. They also examined the ciliated pumping and bolus trapping in their flow analysis. The boundary layer phenomena in the velocity profile are noticed under more significant porosity and time relaxation effects. The bolus circulations are reduced for a larger porosity medium and larger numeric values of the time relaxation parameter.

摘要

使用 BVP4C 技术对不可压缩粘弹性流体在发散通道中受纤毛驱动的层流进行了数值模拟。采用 Jeffrey 非牛顿流变模型来描述流体。在曲线坐标系中建立流动方程,并通过纳维-斯托克斯方程中的体力项模拟多孔介质的影响。通过线性数学关系将流动方程从固定参考系转换到波动坐标系。在流动分析中采用了蠕动现象的生物近似和长波假设。通过纤毛的复杂(波动)推动进行流动分析。二维流动受物理参数(达西数、曲率参数、粘弹性参数、相位差、纤毛长度和发散参数)控制。他们还在流动分析中研究了纤毛泵浦和栓子捕获。在更大的孔隙率和时间松弛效应下,速度分布中出现了边界层现象。对于较大的孔隙率介质和较大的时间松弛参数数值,栓子循环会减少。

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