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Effect of Strain Rate on Nitinol Constitutive Modeling in the Clinically Relevant Strain Range

机译:应变率对临床相关应变范围内镍钛烯醇本构造的影响

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The stress-strain response of nitinol has been shown to be affected by the rate of loading. Nevertheless, most nitinol medical device stress analyses utilize material properties obtained from low strain-rate tensile testing. The purpose of this study was to evaluate the effect of cyclic strain rate on nitinol stress-strain behavior in the clinically relevant strain range, and to analyze the effect of incorporating observed variations in a finite element model of an apex specimen. Nitinol wire specimens with a one inch gage length were tested at a range of strain rates in both air and a water bath, both at 37°C. The wire specimens were initially pulled to 6% strain and unloaded to 2% strain at a strain rate of 0.03 s~(-1). Following this initial pull and unload, the specimens were cycled between 2% and 2.5% up to five times at strain rates of 0.3% s~(-1), 0.7% s~(-1), 1.3% s~(-1), and 1.6% s~(-1) (corresponding test frequencies of 0.6 Hz to 3.2 Hz). Three specimens were tested at each strain rate. Two finite element models of an apex specimen were then analyzed. The first model had uniform material properties fit to the slow strain rate results. The second model incorporated the observed strain-rate induced stress-strain variations by directly varying the material properties based on the strain distribution calculated in the uniform model. The resulting peak strain amplitudes under the same applied displacements were analyzed to evaluate the effect of the incorporated strain-rate behavior. The experimental testing demonstrated decreased stiffness with increasing strain rate for the wire specimens tested in the water bath, while no change in stiffness was observed when testing in air. When the observed stiffness decrease was incorporated into the apex specimen finite element model, an 11 % increase in strain amplitude was observed due to strain localization in the softer regions. These results suggest that strain levels at in vivo loading rates may be higher than those predicted by finite element models that utilize constitutive models derived from slow strain-rate tensile tests.
机译:Nitinol的应力 - 应变反应已被证明受加载速率的影响。然而,大多数Nitinol医疗装置应力分析利用从低应变率拉伸试验获得的材料性质。本研究的目的是评估循环应变率对临床相关应变范围内尼甘醇应激 - 应变行为的影响,并分析掺入顶点标本的有限元模型中观察到的变化的效果。在37℃下在空气和水浴中的一系列应变速率下测试具有一英寸计量长度的镍钛烯醇线标本。最初将线材样本拉到6%菌株并以0.03 s〜(-1)的应变速率卸载至2%菌株。在初始拉动和卸载之后,试样在应变率为0.3%S〜(-1)的应变速率下循环2%至2.5%,0.7%S〜(-1),1.3%S〜(-1 )和1.6%S〜(-1)(相应的测试频率为0.6Hz至3.2Hz)。在每个应变速率下测试三个标本。然后分析了顶点样本的两个有限元模型。第一种模型具有均匀的材料特性,适合慢速率结果。第二模型通过基于在均匀模型中计算的应变分布直接改变材料特性,结合了所观察到的应变速率诱导的应力变化。分析所得位于相同施加的位移下的所得峰应变幅度以评估掺入的应变率行为的效果。实验测试表明,随着水浴中测试的丝网质量率的增加,刚度降低,而在空气中测试时,观察到刚度的变化。当观察到的刚度减少掺入顶点样本有限元模型中时,由于在更柔软的区域中的应变定位,观察到应变幅度增加11%。这些结果表明,体内加载率的应变水平可以高于利用慢速应变速率拉伸试验的本质型模型预测的那些。

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