A Multichamber Pulsating-Flow Device With Optimized Spatial Shear Stress and Pressure for Endothelial Cell Testing.

IF 1.7 4区 医学 Q4 BIOPHYSICS
Obed A Campos, Antoni Garcia-Herreros, Antonio L Sánchez, Jeffrey R Fineman, Geno Pawlak
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Abstract

Design and analysis are presented for a new device to test the response of endothelial cells to the simultaneous action of cyclic shear stresses and pressure fluctuations. The design consists of four pulsatile-flow chambers connected in series, where shear stress is identical in all four chambers and pressure amplitude decreases in successive chambers. Each flow chamber is bounded above and below by two parallel plates separated by a small gap. The design of the chamber planform must ensure that cells within the testing region experience spatially uniform time-periodic shear stress. For conditions typically encountered in applications, the viscous unsteady flow exhibits order-unity values of the associated Womersley number. The corresponding solution to the unsteady lubrication problem, with general nonsinusoidal flowrate, is formulated in terms of a stream function satisfying Laplace's equation, which can be integrated numerically to determine the spatial distribution of shear stresses for chambers of general planform. The results are used to optimize the design of a device with a hexagonal planform. Accompanying experiments using particle tracking velocimetry (PTV) in a fabricated chamber were conducted to validate theoretical predictions. Pressure readings indicate that intrachamber pressure variations associated with viscous pressure losses and acoustic fluctuations are relatively small, so that all cells in a given testing region experience nearly equal pressure forces.

用于内皮细胞测试的具有优化空间剪切应力和压力的多腔脉动流装置
本文介绍了一种新装置的设计和分析,该装置用于测试内皮细胞对循环剪切应力和压力波动同时作用的反应。该设计由四个串联的脉动流室组成,所有四个流室的剪切应力相同,压力振幅在连续的流室中减小。每个流室的上下均由两块平行板围成,两块板之间有小缝隙隔开。流室平面形状的设计必须确保测试区域内的细胞受到空间均匀的时间周期性剪切应力。对于应用中通常遇到的条件,粘性非稳态流表现出相关沃默斯利数的阶均值。非稳态润滑问题的相应解决方案是以满足拉普拉斯方程的流函数来表示的,它具有一般的非正弦流速,可以通过数值积分来确定一般平面形状的腔室的剪应力空间分布。计算结果用于优化六边形平面装置的设计。为了验证理论预测,还在一个制造好的腔体内使用粒子跟踪测速仪进行了配套实验。压力读数表明,与粘性压力损失和声波波动相关的腔室内部压力变化相对较小,因此给定测试区域内的所有腔室受到的压力几乎相等。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.40
自引率
5.90%
发文量
169
审稿时长
4-8 weeks
期刊介绍: Artificial Organs and Prostheses; Bioinstrumentation and Measurements; Bioheat Transfer; Biomaterials; Biomechanics; Bioprocess Engineering; Cellular Mechanics; Design and Control of Biological Systems; Physiological Systems.
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