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Finite Element Framework for Fatigue Performance Assessment of Superelastic Nitinol Used in Medical Devices

机译:用于医疗器械的超弹性镍钛诺疲劳性能评估的有限元框架

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Fatigue life analysis of superelastic nitinol in medical device applications is challenging due to a number of confounding factors. Chief among them is the lack of a clear definition of a nitinol fatigue constant life diagram. It is equally difficult to convert the complex loading and anatomic boundary conditions that the device is subjected to in service and through delivery into the material fatigue strain at the worst-case location. Although ascertaining accurate statistical information on the fatigue life strength distribution is time-consuming and technically demanding, lack of a standard definition and consensus on the proper analysis procedure to derive the governing fatigue stress and strain quantity is the most fundamental issue. Consequently, controversies persist concerning the existence of a fatigue endurance limit, the nature of the constant lifeline, the effect of precondition strain and mean strain on nitinol fatigue, and the stress-life-reliability relationship based on statistical analysis of fatigue life data. Although the local strain state is believed to be the major driver of fatigue for nitinol, the correlation between far field boundary conditions and the local material strain state is often misinterpreted or grossly simplified. This paper seeks to examine fatigue-governing parameters and their impacts on the fatigue strength and life distribution to provide a basic framework for nitinol fatigue life prediction. Specifically, the cyclic strain quantities derived using different finite element approaches are investigated. In particular, the focus is to clarify the influence of finite element strain calculation on the cyclic material strain dependence of nitinol fatigue constant life for the determination of global load parameters. The overall goal is to establish a finite element strain calculation framework for predicting the durability performance of structure-critical medical devices with a confidence level meeting the requirements of international standards, regulatory guidance, and clinical practice for patient safety. fatigue; constant lifeline; strain estimation; FEA; superelastic; nitinol; medical devices
机译:由于许多混杂因素,在医疗器械应用中对超弹性镍钛合金的疲劳寿命分析具有挑战性。其中最主要的是缺乏对镍钛合金疲劳常数寿命图的明确定义。同样困难的是,将设备在使用中以及在运输过程中所经受的复杂载荷和解剖学边界条件转换为最坏情况下的材料疲劳应变。尽管要确定有关疲劳寿命强度分布的准确统计信息既耗时又需要技术,但最基本的问题是缺乏标准定义和对导出疲劳疲劳主应力和应变量的正确分析程序的共识。因此,关于疲劳寿命极限的存在,恒定寿命线的性质,前提应变和平均应变对镍钛合金疲劳的影响以及基于疲劳寿命数据统计分析的应力-寿命-可靠性关系仍然存在争议。尽管认为局部应变状态是镍钛诺疲劳的主要驱动力,但远场边界条件与局部材料应变状态之间的相关性常常被误解或被大大简化。本文旨在研究疲劳控制参数及其对疲劳强度和寿命分布的影响,从而为镍钛合金疲劳寿命预测提供基本框架。具体而言,研究了使用不同有限元方法得出的循环应变量。特别是,重点是要弄清楚有限元应变计算对镍钛合金疲劳常数寿命循环材料应变相关性的影响,以确定整体载荷参数。总体目标是建立一个有限元应变计算框架,以预测具有关键意义的医疗器械的耐用性,其置信度应满足国际标准,法规指导和患者安全临床实践的要求。疲劳;不断的生命线;应变估计有限元分析;超弹性镍钛诺医疗设备

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