Quantitative analysis of incongruity, contact areas and cartilage thickness in the human hip joint.

Acta anatomica Pub Date : 1997-01-01 DOI:10.1159/000147930
F Eckstein, R von Eisenhart-Rothe, J Landgraf, C Adam, F Loehe, M Müller-Gerbl, R Putz
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引用次数: 55

Abstract

Joint incongruity and cartilage thickness have been shown to determine the contact stresses and the load partitioning between the solid and fluid phases of articular cartilage. Matrix stresses, which are relevant in the development of osteoarthrosis, can, however, not be determined experimentally but must be calculated using numerical methods. The aim of the present study was to quantify the incongruity and cartilage thickness of the human hip, in order to allow for the construction of morphologically accurate finite element models. Twelve cadaveric specimens (34-86 years), two fresh and ten fixed, were investigated. The loading configuration was based on in vivo measurements of hip joint forces during midstance. The incongruity and contact areas were determined using a polyether casting technique, in the minimally and the fully loaded state. The cartilage thickness was measured at identical coordinate points with an A-mode ultrasonic system. Generally, the contact started at lower loads at the edge of the lunate surface, and the joint space increased towards its central aspects. In some specimens the contact started in the acetabular roof, leaving a joint space of up to 2 mm in the horns of the lunate surface. In others, the initial contact was observed in the anterior and posterior horns of the lunate surface with a joint space width of up to 0.75 mm in the acetabular roof. The size of the contact areas increased from about 20% of the lunate surface to 98% at higher loads. The articular cartilage thickness ranged from 0.7 to 3.6 mm, the maxima being located in the ventral aspects of the femoral head and acetabulum. These quantitative data on joint space width, contact, and cartilage thickness in the human hip joint may be used to construct and validate finite element models which are required to elucidate the mechanical factors involved in osteoarthrosis.

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人体髋关节不协调、接触面积及软骨厚度的定量分析。
关节不一致和软骨厚度已被证明决定接触应力和关节软骨的固体和流体阶段之间的负荷分配。然而,与骨关节病的发展相关的基质应力不能通过实验确定,而必须使用数值方法计算。本研究的目的是量化人类髋关节的不一致性和软骨厚度,以便建立形态学上准确的有限元模型。研究了12具尸体标本(34-86岁),其中2具新鲜标本和10具固定标本。加载配置是基于在体内测量髋关节力在中间。在最小负荷和满载状态下,采用聚醚铸造技术确定了不协调和接触区域。用a型超声系统在同一坐标点测量软骨厚度。一般情况下,接触开始于较低载荷下的月面边缘,关节空间向月面中心方向增大。在一些标本中,接触开始于髋臼顶,在月骨面角处留下了长达2mm的关节间隙。在其他病例中,最初的接触发生在月骨面前后角,髋臼顶关节间隙宽度可达0.75 mm。在更高的载荷下,接触面积的大小从月球表面的20%增加到98%。关节软骨厚度从0.7到3.6 mm不等,最大值位于股骨头和髋臼的腹侧。这些关于人类髋关节关节间隙宽度、接触和软骨厚度的定量数据可用于构建和验证有限元模型,这些模型用于阐明骨关节病所涉及的力学因素。
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