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首页> 外文期刊>The international journal of artificial organs >Analysis of the effect of the size of three-dimensional micro-geometric structures on physical adhesion phenomena using microprint technique
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Analysis of the effect of the size of three-dimensional micro-geometric structures on physical adhesion phenomena using microprint technique

机译:三维微观几何结构效果的效果分析了微型技术对物理粘合现象的影响

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Thrombus formation on biomaterial surfaces with microstructures is complex and not fully understood. We have studied the micro-secondary flow around microstructures that causes components of blood to adhere physically in a low Reynolds number region. The purpose of this study was to investigate the effect of micro-column size on the adhesion phenomena and show a quantitative relationship between the micro-secondary flow and physical adhesion phenomena, considering microstructures of various sizes. The flow simulation and quantitative assessment of adhesion rates around micro-columns was conducted using four sizes of micro-columns. This study also calculated the vectors of micro-secondary flow and average shear rate around a micro-column using a computational fluid dynamics analysis. The simulation showed the micro-secondary flow toward the bottom surface at upstream side and low shear rate distribution generated around a micro-column. Furthermore, physical adhesion tests were conducted using microbeads and a perfusion circuit to examine the size effect of the micro-columns on the physical adhesion. The results showed that the average adhesion rate around the micro-column increases with the associated size increase of the micro-column. Our results indicate that quantification of micro-secondary flow on a material surface with microstructures of several sizes and shapes (such as in a rough surface) is important for the evaluation of the adhesion phenomenon even though the surface roughness value on the material surface is small.
机译:在具有微观结构的生物材料表面上形成血栓形成是复杂的并且不完全理解。我们已经研究了微观结构周围的微型流动,导致血液的组分在低雷诺数区域物理上粘附。本研究的目的是研究微柱大小对粘附现象的影响,并显示微观二次流动和物理粘合现象之间的定量关系,考虑各种尺寸的微观结构。使用四种微柱进行微柱周围的粘合速率的流动模拟和定量评估。该研究还使用计算流体动力学分析计算了微柱周围微型流动和平均剪切速率的载体。模拟显示在微柱周围的上游侧和低剪切速率分布上朝向底表面的微型流动。此外,使用微珠和灌注回路进行物理粘合试验,以检查微柱对物理粘合性的尺寸效应。结果表明,微柱周围的平均粘合速率随着微柱的相关尺寸增加而增加。我们的结果表明,在具有多种尺寸和形状的微观结构(如粗糙表面)的材料表面上的微型流动的定量对于评估粘附现象,即使材料表面上的表面粗糙度值很小,也很重要。

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