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Analysis and experiments on flow-induced hemolysis.

机译:流动性溶血的分析和实验。

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摘要

Hemolysis (red cells lysis) caused by fluid stresses in flows within hypodermic needles, blood pumps, artificial hearts and other cardiovascular devices, is one of the major concerns during the design and use of cardiovascular or blood-processing extracorporeal devices. A non-invasive experimental method which does not interfere directly with red blood cells was designed to investigate the red cells' deformations in response to a range of flow conditions. The designed flow chamber and pump system provided a controlled two-dimensional Poiseuille flow with average velocity of up to 4 m/s and a range of fluid stresses up to 5000 dyn/cm2. The dimension of deformed cells and positions was measured to obtain the aspect ratio of red cells under stress from images captured by the microscope-laser-camera system. A strain-based blood damage model from Rand's viscoelastic model was built to predict cell strain. The empirical coefficients in the blood damage model were calibrated by the measurements from the experiments.; Flow-induced hemolysis in the blood flow through hypodermic needles was investigated. The flow-induced hemolysis of the needles may be reduced by a modified design of the entrance geometry of the needle. Three groups of 16 gauge needles were compared: one standard group with sharp entrance, another with beveled entrance and a third with rounded entrance. The CFD analysis combined with the strain-based blood damage model, Heuser et al. model and Giersiepen et al. model respectively was used to analyze the flow-induced hemolysis of the three needles. The predicted results were compared to the experimental results, which showed the rounded entrance reduced hemolysis by 34%, but the beveled entrance increased hemolysis by 38%. The strain-based blood damage model predicted the reduced hemolysis by 7.4% in rounded needle and the increased hemolysis by 13% in beveled needle. Both Heuser et al. model and Giersiepen et al. model predicted increased hemolysis in rounded needle.
机译:由皮下注射针头,血泵,人造心脏和其他心血管设备内的流体应力引起的溶血(红细胞裂解)是设计或使用心血管或血液处理体外设备时的主要问题之一。设计一种不直接干扰红细胞的非侵入性实验方法,以研究红细胞在一定范围的流动条件下的变形。设计的流动室和泵系统提供了受控的二维Poiseuille流动,平均速度高达4 m / s,流体应力范围高达5000 dyn / cm2。测量变形细胞的尺寸和位置,以从显微镜-激光-相机系统捕获的图像中获得红细胞在应力下的纵横比。建立了基于兰德粘弹性模型的基于应变的血液损伤模型,以预测细胞应变。血液损伤模型中的经验系数通过实验测量值进行校准。研究了皮下注射针在血流中的血流诱导溶血现象。针的流动引起的溶血可以通过针的入口几何形状的改进设计来减少。比较了三组每组16个规格的针头:一组标准组具有锐利的入口,另一组具有斜面的入口,第三组具有圆形的入口。 CFD分析结合基于应变的血液损害模型Heuser等。模型和Giersiepen等。分别使用模型对三个针头的流动性溶血进行分析。将预测结果与实验结果进行比较,实验结果表明,圆形入口使溶血减少了34%,而斜面入口使溶血增加了38%。基于应变的血液损伤模型预测,圆形针的溶血减少了7.4%,而斜角针的溶血增加了13%。两者Heuser等。模型和Giersiepen等。模型预测圆形针的溶血增加。

著录项

  • 作者

    Chen, Yangsheng.;

  • 作者单位

    University of Louisville.;

  • 授予单位 University of Louisville.;
  • 学科 Engineering Biomedical.; Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 139 p.
  • 总页数 139
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;机械、仪表工业;
  • 关键词

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