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Encoding Scratch and Scrape Features for Wear Modeling of Total Joint Replacements

机译:编码刮擦和刮削功能,用于总关节置换的磨损建模

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摘要

Damage to hard bearing surfaces of total joint replacement components typically includes both thin discrete scratches and broader areas of more diffuse scraping. Traditional surface metrology parameters such as average roughness(Ra)or peak asperity height(Rp)are not well suited to quantifying those counterface damage features in a manner allowing their incorporation into models predictive of polyethylene wear. A diffused lighting technique, which had been previously developed to visualize these microscopic damage features on a global implant level, also allows damaged regions to be automatically segmented. These global-level segmentations in turn provide a basis for performing high-resolution optical profilometry (OP) areal scans, to quantify the microscopic-level damage features. Algorithms are here reported by means of which those imaged damage features can be encoded for input into finite element (FE) wear simulations. A series of retrieved clinically failed implant femoral heads analyzed in this manner exhibited a wide range of numbers and severity of damage features. Illustrative results from corresponding polyethylene wear computations are also presented.
机译:总关节置换部件的硬轴承表面的损坏通常包括薄的离散划痕和更广泛的区域的缩小刮擦。平均粗糙度(RA)或峰值高度(RP)等传统的表面计量参​​数不适合于量化这些逆面损伤特征,以便它们掺入预测聚乙烯磨损的模型。以前开发的扩散照明技术以在全球植入水平上可视化这些显微损伤特征,也允许自动分割损坏的区域。这些全局级别的分割又为执行高分辨率光学轮廓测量(OP)区域扫描提供了基础,以量化显微级损坏特征。借助于该算法通过该算法报告,可以将这些成像损坏特征进行编码,以输入有限元(FE)磨损模拟。以这种方式分析的一系列检索临床失败的植入股头显示出各种数量和损害特征的严重程度。还提出了相应的聚乙烯磨损计算的说明性结果。

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