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Comparative analysis of the biomechanical behavior of two different design metaphyseal-fitting short stems using digital image correlation

机译:两种不同设计复合短茎的生物力学行为的比较分析使用数字图像相关性

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摘要

The progressive evolution in hip replacement research is directed to follow the principles of bone and soft tissue sparing surgery. Regarding hip implants, a renewed interest has been raised towards short uncemented femoral implants. A heterogeneous group of short stems have been designed with the aim to approximate initial, post-implantation bone strain to the preoperative levels in order to minimize the effects of stress shielding. This study aims to investigate the biomechanical properties of two distinctly designed femoral implants, the TRI-LOCK Bone Preservation Stem, a shortened conventional stem and the Minima S Femoral Stem, an even shorter and anatomically shaped stem, based on experiments and numerical simulations. Furthermore, finite element models of implant–bone constructs should be evaluated for their validity against mechanical tests wherever it is possible. In this work, the validation was performed via a direct comparison of the FE calculated strain fields with their experimental equivalents obtained using the digital image correlation technique. Design differences between Trilock BPS and Minima S femoral stems conditioned different strain pattern distributions. A distally shifting load distribution pattern as a result of implant insertion and also an obvious decrease of strain in the medial proximal aspect of the femur was noted for both stems. Strain changes induced after the implantation of the Trilock BPS stem at the lateral surface were greater compared to the non-implanted femur response, as opposed to those exhibited by the Minima S stem. Linear correlation analyses revealed a reasonable agreement between the numerical and experimental data in the majority of cases. The study findings support the use of DIC technique as a preclinical evaluation tool of the biomechanical behavior induced by different implants and also identify its potential for experimental FE model validation. Furthermore, a proximal stress-shielding effect was noted after the implantation of both short-stem designs. Design-specific variations in short stems were sufficient to produce dissimilar biomechanical behaviors, although their clinical implication must be investigated through comparative clinical studies.
机译:髋关节替代研究中的渐进演变遵循骨骼和软组织备用手术原理。关于髋关节植入物,已经向短发布的股骨植入物提出了一种新的兴趣。已经设计了一种非均相的短茎,其目的是近似初始,植入后骨菌株对术前水平,以便最小化应力屏蔽的影响。本研究旨在研究两个明显设计的股植入物的生物力学特性,三锁骨保存杆,缩短的常规茎和最小股骨杆,甚至更短,解剖学形状的茎,基于实验和数值模拟。此外,在可能的情况下,应评估植入骨构造的有限元模型的植入骨构造的有效性。在这项工作中,通过使用数字图像相关技术获得的实验等同物直接比较来执行验证。 Trillock BPS和最小股骨杆之间的设计差异调节不同的应变模式分布。对于植入物插入的结果,对于股骨内侧近侧方面的植入近侧方向中的菌株明显降低,对于两个茎,对远端移位载荷分布图案。与非植入股骨响应相比,在横向表面上植入侧表面时诱导的菌株变化诱导,而不是最小S茎所呈现的那些。线性相关分析显示大多数情况下数值和实验数据之间的合理一致。研究发现支持DIC技术作为不同植入物诱导的生物力学行为的临床前评价工具,并确定其实验FE模型验证的潜力。此外,在植入短茎设计之后,注意到近端应力屏蔽效果。尽管必须通过比较临床研究研究其临床意义,但是短茎的特异性变异足以产生不同的生物力学行为。

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