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首页> 外文期刊>Journal of Biomechanics >Contact mechanics of reverse engineered distal humeral hemiarthroplasty implants
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Contact mechanics of reverse engineered distal humeral hemiarthroplasty implants

机译:逆向工程性肱骨远端半髋置换植入物的接触力学

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Erosion of articular cartilage is a concern following distal humeral hemiarthroplasty, because native cartilage surfaces are placed in contact with stiff metallic implant components, which causes decreases in contact area and increases in contact stresses. Recently, reverse engineered implants have been proposed which are intended to promote more natural contact mechanics by reproducing the native bone or cartilage shape. In this study, finite element modeling is used in order to calculate changes in cartilage contact areas and stresses following distal humeral hemiarthroplasty with commercially available and reverse engineered implant designs. At the ulna, decreases in contact area were -34 +/- 3% (p=0.002), -27 +/- 1% (p < 0.001) and -14 +/- 2% (p=0.008) using commercially available, bone reverse engineered and cartilage reverse engineered designs, respectively. Peak contact stresses increased by 461 +/- 57% (p=0.008), 387 +/- 127% (p=0.229) and 165 +/- 16% (p=0.003). At the radius, decreases in contact area were -21 +/- 3% (p=0.013), 13 +/- 2% (p<0.006) and -6 +/- 1% (p=0.020), and peak contact stresses increased by 75 +/- 52% (p>0.999), 241 +/- 32% (p=0.010) and 61 +/- 10% (p=0.021). Between the three different implant designs, the cartilage reverse engineered design yielded the largest contact areas and lowest contact stresses, but was still unable to reproduce the contact mechanics of the native joint. These findings align with a growing body of evidence indicating that although reverse engineered hemiarthroplasty implants can provide small improvements in contact mechanics when compared with commercially available designs, further optimization of shape and material properties is required in order reproduce native joint contact mechanics. (C) 2015 Elsevier Ltd. All rights reserved.
机译:肱骨远端半髋置换术后关节软骨受到关注,因为天然软骨表面与坚硬的金属植入物组件接触,这会导致接触面积减少和接触应力增加。近来,已经提出了反向工程植入物,其旨在通过复制天然骨或软骨形状来促进更自然的接触力学。在这项研究中,使用有限元建模来计算肱骨远端半髋置换术后软骨接触面积和应力的变化,并采用市售可逆设计的植入物设计。在尺骨处,使用可商购的接触面积的减少为-34 +/- 3%(p = 0.002),-27 +/- 1%(p <0.001)和-14 +/- 2%(p = 0.008) ,骨逆向工程和软骨逆向工程设计。峰值接触应力增加461 +/- 57%(p = 0.008),387 +/- 127%(p = 0.229)和165 +/- 16%(p = 0.003)。在半径处,接触面积的减少为-21 +/- 3%(p = 0.013),13 +/- 2%(p <0.006)和-6 +/- 1%(p = 0.020),并且峰接触应力分别增加75 +/- 52%(p> 0.999),241 +/- 32%(p = 0.010)和61 +/- 10%(p = 0.021)。在三种不同的植入物设计之间,软骨反向工程设计产生了最大的接触面积和最低的接触应力,但仍无法再现天然关节的接触力学。这些发现与越来越多的证据相吻合,这些证据表明,尽管与商业上可获得的设计相比,反向工程化的半髋关节置换植入物在接触力学上可以提供很小的改善,但仍需要进一步优化形状和材料性能以重现天然的关节接触力学。 (C)2015 Elsevier Ltd.保留所有权利。

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