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Aortic and Mitral Heart Valves for Computational and Experimental Analysis

机译:用于计算和实验分析的主动脉和二尖瓣瓣膜

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Modern heart valve replacements can usually be problematic for the patients that receive them. The two main valve designs that are used for heart valve replacements are mechanical valves and bioprosthetic, or tissue valves. Both of these options have their own respective problems. While the bioprosthetic valves are more natural, they lack structural integrity and can deteriorate. The mechanical valves have a strong structural integrity, but this can be the cause of other problems e.g. blood clots, flow disturbances. In the pursuit of in vitro testing of different types of valve designs in differing heart conditions, I reverse-engineered and designed anatomical designs of both the aortic valve and the mitral valve to produce models for evaluation and testing. The first step in designing the valve was to reverse engineer similar tissue valves, which was completed in the form of a parent part. A stress analysis in SolidWorks was run on the valve design to determine if any changes needed to be implemented in the design before in vitro testing occurs. Using 3D printed molds, it was found that compression molding was preferable to injection molding. Through several iterations, the design was modified to suit the mold compression method. These results can advance research for testing heart valves in a laboratory, with differing flow conditions and implications of using medical devices that may interfere with valve function.
机译:现代心脏瓣膜置换通常对于接受它们的患者通常可能是有问题的。用于心脏瓣膜置换的两个主阀门设计是机械阀和生物假体或组织阀。这两个选项都有他们各自的问题。虽然生物假体瓣膜更自然,但它们缺乏结构完整性,并且可以恶化。机械阀具有强大的结构完整性,但这可能是其他问题的原因。血凝块,流动紊乱。在不同类型的阀门设计中追求不同类型的心脏病的体外测试,我对主动脉瓣和二尖瓣的逆向设计和设计的解剖设计,以生产用于评估和测试的模型。设计阀门的第一步是逆转工程师类似的组织阀,其以父部部分的形式完成。在阀门设计上运行SolidWorks中的应力分析,以确定是否在体外测试之前在设计中实现的任何变化。使用3D印刷模具,发现压缩模塑优选注塑成型。通过几次迭代,修改设计以适应模具压缩方法。这些结果可以提前研究实验室中的心脏瓣膜,具有不同的流动条件和使用可能干扰阀功能的医疗装置的影响。

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