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Morphological assessment of in vivo wear of orthopaedic implants using multiscalar wavelets

机译:使用多标量小波对骨科植入物的体内磨损进行形态学评估

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The properties of the femoral counterface are recognised as very significant in the study of the tribologica] design of artificial joints and the wear of ultra-high molecular polyethylene (UHMWPE). Research has shown that morphological features of femoral counterfaces heavily interfere with the wear of UHMWPE. It has been reported that if 1-2 μm defects or deep scratches are presented in a diamond like carbon (DLC) coated head, the third-body damage can cause a 7-15-fold increase in a UHMWPE wear rate, and in a metallic surface. The typical third-body damage can be up to a 30-70-fold compared with smooth roughness surface. Therefore, the identification of morphology of counterface surfaces has become an important requirement in the field of wear and tribology of the hip joint system. This paper proposes a methodology for a multiscalar wavelet for addressing morphological surfaces in order to extract the significant elements-of 3D bearing surfaces of orthopaedic implants. The multiscalar wavelet is used to decompose a surface signal into the scalar domain. In wavelet analysis, the Cartesian space-based information is transferred into scale-based information, which provides not only the frequency events of the original signal but also keeps their location properties; as a result, morphological features can be identified. A series of ceramic, metallic and DLC femoral heads in vivo wear have been used to demonstrate the applicability of using the multiscalar wavelet model in the assessment of the morphology of these surfaces.
机译:在人工关节的摩擦学设计和超高分子量聚乙烯(UHMWPE)的磨损研究中,股骨相对面的特性被认为是非常重要的。研究表明,股骨相对面的形态特征严重干扰了UHMWPE的磨损。据报道,如果在类金刚石碳(DLC)涂层的喷头中出现1-2μm缺陷或深刮痕,则第三体损伤会导致UHMWPE磨损率增加7-15倍,并且金属表面。与光滑的粗糙表面相比,典型的第三体损坏可能高达30-70倍。因此,在髋关节系统的磨损和摩擦学领域中,对立面的表面形态的识别已成为重要的要求。本文提出了一种用于处理形态表面的多标量小波的方法,以提取整形外科植入物的3D承载表面的重要元素。多标量小波用于将表面信号分解为标量域。在小波分析中,笛卡尔的基于空间的信息被转换为基于比例的信息,这不仅提供了原始信号的频率事件,而且还保留了它们的位置特性。结果,可以识别形态特征。一系列陶瓷,金属和DLC股骨头在体内的磨损已被用于证明在评估这些表面的形态时使用多标量小波模型的适用性。

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