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首页> 外文期刊>Journal of biomedical materials research, Part A >Rapid and Reliable Biomechanical Screening of Injectable Bone Cements for Autonomous Augmentation of Osteoporotic Vertebral Bodies: Appropriate Values of Elastic Constants for Finite Element Models
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Rapid and Reliable Biomechanical Screening of Injectable Bone Cements for Autonomous Augmentation of Osteoporotic Vertebral Bodies: Appropriate Values of Elastic Constants for Finite Element Models

机译:用于骨质疏松椎体自主增生的可注射骨水泥的快速可靠的生物力学筛选:有限元模型的弹性常数的适当值

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We performed finite element analysis studies on 3 three-dimensional representations of a single vertebral body: a regular cube, made of low-density polyurethane foam (foam cube analog); a regular cube considered composed of cancellous bone only (bone cube analog)); and the body of the L2 vertebra (full anatomical body model). Each finite element model was subjected to a compressive load of 2300 N, uniformly distributed over its superior surface. The cancellous and cortical bones were assigned anisotropic elastic properties, while the foam and the endplate material were considered to have isotropic properties. In each representation, the elastic properties of the material(s) were adjusted (from the initial values that were used) to give a stiffness of the representation that was equal to that of the mean result for fresh cadaveric osteoporotic single vertebral bodies, as obtained from ex vivo experimental studies reported in the literature (1226 + - 996 N mm~(-1)). Thus, any one of these representations, when used with the final adjusted value(s) of the elastic constants and modified to include a cylindrical hole filled with a specific volume of bolus of an injected bone cement, may be utilized in the rapid and reliable experimental ex vivo and/or numerical screening of these cements for use in autonomous vertebral body augmentation. This approach has many advantages over those that are currently being used, which are either characterization of the cement in isolation from the vertebral body or use of cadaveric vertebral bodies.
机译:我们对单个椎体的3个三维表示进行了有限元分析研究:由低密度聚氨酯泡沫制成的规则立方体(泡沫立方体类似物);被认为仅由松质骨组成的规则立方体(类似立方体的骨骼));和L2椎骨的身体(完整的解剖学人体模型)。每个有限元模型都承受2300 N的压缩载荷,均匀地分布在其上表面上。松质骨和皮质骨具有各向异性的弹性,而泡沫和端板材料则具有各向同性。在每种表示中,都调整了材料的弹性特性(从使用的初始值开始),以使表示的刚度等于刚获得的尸体骨质疏松性单椎体平均结果的刚度来自文献报道的离体实验研究(1226 +-996 N mm〜(-1))。因此,当与弹性常数的最终调整值一起使用并且修改为包括填充有特定体积的注入骨水泥药丸的圆柱孔时,这些表示中的任何一种都可以快速而可靠地利用。这些水泥的实验性离体和/或数值筛查,以用于自主性椎体增强。与目前使用的那些方法相比,该方法具有许多优点,这些优点要么是与椎体隔离的特性表征,要么是尸体椎体的使用。

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