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Fluid dynamic analysis of flow in orbiting dishes and the effects of flow on shear stress and endothelial cellular responses.

机译:轨道皿中流动的流体动力学分析以及流动对剪切应力和内皮细胞反应的影响。

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摘要

This work presents a novel comprehensive effort to understand the fluid dynamics within orbiting dishes and the effects of the resulting oscillating fluid flow on shear and endothelial cellular responses within the dishes. It is well documented that hemodynamic parameters, especially wall shear stress (WSS), have been shown to play important roles in altering various endothelial cellular responses, intracellular pathways and gene expression, and to have significant impacts on disease progression, such as atherosclerotic plaque development. In practice, wall shear stress (WSS) is oscillatory rather than steady due to the travelling waveform and varies across the surface of the dish at any instant in time. The first part of this effort presents a computational model which provides complete spatial and temporal resolution of oscillatory WSS over the bottom surface of an orbiting Petri dish throughout the orbital cycle. The model was reasonably well validated by the analytical solution and the results were compared to the tangential WSS magnitudes obtained using one-dimensional optical velocimetry at discreet locations on the bottom of an orbiting dish.;In the last part of this study, this model was applied to understand the effects of oscillatory WSS on endothelial cellular responses, including cell proliferation, morphology, and atherogenic gene expression. Since WSS on the bottom of the dish is two-dimensional, a new directional oscillatory shear index (DOSI) was developed to quantify the directionality of oscillating shear. DOSI approached zero for bidirectional oscillatory shear of equal magnitudes near the center and approached one for unidirectional oscillatory shear near the wall, where large tangential WSS dominated a much smaller radial component. Cellular responses including cell proliferation, area, shape index, orientation, and atherogenic gene expressions at mRNA level (I-CAM1, E-Selectin, IL-6) were then correlated with different DOSI level under the same flow conditions. A comprehensive statistical analysis demonstrated that DOSI significantly affects all the responses, indicating that, in addition to shear magnitudes, directionality and the oscillatory nature of shear significantly influence cellular responses.;A thorough fluid dynamic analysis was performed in the next part of this work to understand the fluid motion inside the dish by investigating the system properties that affect WSS. To identify the effects of each of those properties on WSS, a dimensional analysis study was performed which includes analyses of three dimensionless parameters---Slope ratio, Froude Number, and Stokes Number. A fourth Reynolds Number was held constant. By analyzing a range from low to high values for each of the parameters, transition points for each of the flow parameters were determined. Further the nature of WSS at different radii (20%, 40%, 60% and 80% of the maximum radius of the dish) on the bottom surface was studied as a function of combinations of various dimensionless parameters.
机译:这项工作提出了一项新颖的综合性工作,以了解轨道培养皿内的流体动力学以及由此产生的振荡流体流对培养皿内剪切和内皮细胞反应的影响。已有文献证明,血流动力学参数,尤其是壁切应力(WSS),在改变各种内皮细胞反应,细胞内途径和基因表达中起着重要作用,并且对疾病进展(例如动脉粥样硬化斑块形成)具有重大影响。实际上,由于行进波形,壁切应力(WSS)会产生振荡而不是稳定,并且会在任何时间瞬间在碟形表面上发生变化。这项工作的第一部分提出了一个计算模型,该模型在整个轨道周期内在轨道培养皿底面上提供了振荡WSS的完整时空分辨率。该模型通过分析解决方案得到了很好的验证,并将结果与​​使用一维光学测速仪在轨道盘底部离散位置处获得的切线WSS量值进行了比较;在本研究的最后一部分中,该模型是被用于了解振荡性WSS对内皮细胞反应的影响,包括细胞增殖,形态和动脉粥样硬化基因表达。由于碟形底部的WSS是二维的,因此开发了一种新的定向振荡剪切指数(DOSI)来量化振荡剪切的方向性。对于中心附近等幅的双向振荡剪切,DOSI接近零,而对于壁附近的单向振荡剪切,DOSI接近1,其中大的切向WSS占据了较小的径向分量。然后在相同的流动条件下,将包括mRNA水平(I-CAM1,E-选择素,IL-6)的细胞增殖,面积,形状指数,方向和动脉粥样硬化基因表达在内的细胞反应与不同的DOSI水平相关联。全面的统计分析表明,DOSI会显着影响所有响应,这表明,除了剪切强度外,剪切的方向性和振荡性质还会显着影响细胞响应。通过研究影响WSS的系统特性,了解碟子内部的流体运动。为了确定每种特性对WSS的影响,进行了尺寸分析研究,其中包括对三个无因次参数的分析-斜率,弗洛德数和斯托克斯数。第四雷诺数保持不变。通过分析每个参数从低到高的范围,确定每个流量参数的过渡点。进一步研究了底面不同半径(盘的最大半径的20%,40%,60%和80%)下WSS的性质,它是各种无量纲参数组合的函数。

著录项

  • 作者

    Chakraborty, Amlan.;

  • 作者单位

    University of Louisville.;

  • 授予单位 University of Louisville.;
  • 学科 Engineering Biomedical.;Engineering Mechanical.;Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 217 p.
  • 总页数 217
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:44:04

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