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A comprehensive combined experimental and computational framework for pre-clinical wear simulation of total knee replacements

机译:用于全膝关节置换的临床前磨损模拟的综合实验和计算框架

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摘要

A more robust pre-clinical wear simulation framework is required in order to simulate wider and higher ranges of activities, observed in different patient populations such as younger more active patients. Such a framework will help to understand and address the reported higher failure rates for younger and more active patients (). The current study has developed and validated a comprehensive combined experimental and computational framework for pre-clinical wear simulation of total knee replacements (TKR).The input mechanical (elastic modulus and Poisson’s ratio) and wear parameters of the moderately cross-linked ultra-high molecular weight polyethylene (UHMWPE) bearing material were independently measured from experimental studies under realistic test conditions, similar to the loading conditions found in the total knee replacements. The wear predictions from the computational wear simulation were validated against the direct experimental wear measurements for size 3 Sigma curved total knee replacements (DePuy, UK) in an independent experimental wear simulation study under three different daily activities; walking, deep squat, and stairs ascending kinematic conditions.The measured compressive mechanical properties of the moderately cross-linked UHMWPE material were more than 20% lower than that reported in the literature under tensile test conditions. The pin-on-plate wear coefficient of moderately cross-linked UHMWPE was significantly dependant of the contact stress and the degree of cross-shear at the articulating surfaces.The computational wear predictions for the TKR from the current framework were consistent and in a good agreement with the independent full TKR experimental wear simulation measurements, with 0.94 coefficient of determination of the framework. In addition, the comprehensive combined experimental and computational framework was able to explain the complex experimental wear trends from the three different daily activities investigated. Therefore, such a framework can be adopted as a pre-clinical simulation approach to optimise different designs, materials, as well as patient’s specific total knee replacements for a range of activities.
机译:为了模拟更广泛和更高范围的活动,需要一个更强大的临床前磨损模拟框架,这种活动在不同的患者群体(如年轻,活跃得多的患者)中观察到。这样的框架将有助于理解和解决年轻和活跃患者报告的更高的失效率。当前的研究已经开发并验证了用于临床前全膝关节置换术(TKR)磨损模拟的综合实验和计算框架,输入的机械强度(弹性模量和泊松比)和中等交联超高磨损参数分子量聚乙烯(UHMWPE)轴承材料是在实际测试条件下(与在总膝关节置换中发现的加载条件相似)从实验研究中独立测量的。根据一项独立的实验性磨损模拟研究,在三种不同的日常活动下,针对3 Sigma弯曲全膝关节置换术的直接实验性磨损测量结果验证了计算性磨损模拟的磨损预测。行走,深蹲和楼梯上升的运动学条件。在拉伸试验条件下,中度交联的UHMWPE材料的测得压缩力学性能比文献报道的低20%以上。中度交联的UHMWPE的销钉对板的磨损系数显着取决于关节表面的接触应力和交叉剪切的程度。从当前框架对TKR的计算磨损预测是一致的,并且很好与独立的完整TKR实验磨损模拟结果一致,具有0.94的框架测定系数。此外,综合的实验和计算框架能够从所研究的三种不同日常活动中解释复杂的实验磨损趋势。因此,这种框架可以用作临床前模拟方法,以针对各种活动优化不同的设计,材料以及患者特定的全膝关节置换。

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