镍钛诺的旋转弯曲疲劳达到十亿次循环。

J D Weaver, G M Sena, K I Aycock, A Roiko, W M Falk, S Sivan, B T Berg
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引用次数: 0

摘要

镍钛诺植入物,尤其是心血管应用中使用的植入物,通常有望在 108 次循环后保持耐用性,但有关镍钛诺超高循环疲劳的文献仍然相对较少,对其机理也不甚了解。为了研究镍钛诺在这一领域的疲劳行为,我们对旋转弯曲疲劳下的镍钛诺丝进行了多方面的评估,包括详细的材料表征和有限元分析,以及对所得疲劳寿命数据的事后分析。根据计算模拟的预测,在大约 105 个循环以下,循环相变与疲劳失效有关。在 105 到 108 个循环之间,断裂相对较少。超过 108 个循环后,疲劳断裂相对常见,这取决于载荷水平和其他因素,包括存在的非金属夹杂物的大小和加载循环的次数。考虑到低循环和超高循环疲劳断裂的观察结果,双失效模型可能比标准的 Coffin-Manson 公式更适合表征超过 108 个循环的镍钛诺疲劳寿命。这项研究首次将医用级镍钛诺的疲劳研究记录到 109 个循环,其观察结果和见解对设计工程师寻求提高未来镍钛诺植入物的耐用性很有价值。
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Rotary Bend Fatigue of Nitinol to One Billion Cycles.

Nitinol implants, especially those used in cardiovascular applications, are typically expected to remain durable beyond 108 cycles, yet literature on ultra-high cycle fatigue of nitinol remains relatively scarce and its mechanisms not well understood. To investigate nitinol fatigue behavior in this domain, we conducted a multifaceted evaluation of nitinol wire subjected to rotary bend fatigue that included detailed material characterization and finite element analysis as well as post hoc analyses of the resulting fatigue life data. Below approximately 105 cycles, cyclic phase transformation, as predicted by computational simulations, was associated with fatigue failure. Between 105 and 108 cycles, fractures were relatively infrequent. Beyond 108 cycles, fatigue fractures were relatively common depending on the load level and other factors including the size of non-metallic inclusions present and the number of loading cycles. Given observations of both low cycle and ultra-high cycle fatigue fractures, a two-failure model may be more appropriate than the standard Coffin-Manson equation for characterizing nitinol fatigue life beyond 108 cycles. This work provides the first documented fatigue study of medical grade nitinol to 109 cycles, and the observations and insights described will be of value as design engineers seek to improve durability for future nitinol implants.

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Rotary Bend Fatigue of Nitinol to One Billion Cycles. Nitinol Release of Nickel under Physiological Conditions: Effects of Surface Oxide, pH, Hydrogen Peroxide, and Sodium Hypochlorite. Effect of Applied Potential on Fatigue Life of Electropolished Nitinol Wires.
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