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A new bone surrogate model for testing interbody device subsidence.

机译:一种用于测试椎间设备下陷的新骨替代模型。

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STUDY DESIGN: An in vitro biomechanical study investigating interbody device subsidence measures in synthetic vertebrae, polyurethane foam blocks, and human cadaveric vertebrae. OBJECTIVE: To compare subsidence measures of bone surrogates with human vertebrae for interbody devices varying in size/placement. SUMMARY OF BACKGROUND DATA: Bone surrogates are alternatives when human cadaveric vertebrae are unavailable. Synthetic vertebrae modeling cortices, endplates, and cancellous bone have been developed as an alternative to polyurethane foam blocks for testing interbody device subsidence. METHODS: Indentors placed on the endplates of synthetic vertebrae, foam blocks, and human vertebrae were subjected to uniaxial compression. Subsidence, measured with custom-made extensometers, was evaluated for an indentor seated either centrally or peripherally on the endplate. Failure force and indentation stiffness were determined from force-displacement curves. RESULTS: Subsidence measures in human vertebrae varied with indentor placement: failure forces were higher and indentors subsided less with peripheral placement. Subsidence measures in foam blocks were insensitive to indentor size/placement; they were similar to human vertebrae for centrally placed but not for peripherally placed indentors. Although subsidence measures in synthetic vertebrae were sensitive to indentor size/placement, failure force and indentation stiffness were overestimated, and subsidence underestimated, for both centrally placed and peripherally placed indentors. CONCLUSION: The synthetic endplate correctly represented the human endplate geometry, and thus, failure force, stiffness, and subsidence in synthetic vertebrae were sensitive to indentor size/placement. However, the endplate was overly strong and thus synthetic vertebrae did not accurately model indentor subsidence in human cadaveric vertebrae. Foam blocks captured subsidence measures more accurately than synthetic vertebrae for centrally placed indentors, but because of their uniform density were not sufficiently robust to capture changes generated from different indentor sizes/placements. The current bone surrogates are not accurate enough in terms of material property distribution to completely model subsidence in human cadaveric vertebrae.
机译:研究设计:一项体外生物力学研究,研究合成椎骨,聚氨酯泡沫块和人体尸体椎间设备的沉陷措施。目的:比较大小和位置不同的椎间融合器的骨替代物与人的椎骨的沉降量度。背景数据摘要:当无法获得人体尸体椎骨时,可以使用骨替代物。已开发出合成椎骨模型皮质,端板和松质骨,以替代聚氨酯泡沫块来测试椎间设备的沉陷。方法:对置于合成椎骨,泡沫块和人椎骨终板上的压头进行单轴压缩。用定制的引伸计测量沉降,以评估压头位于中央或周边的压头。由力-位移曲线确定破坏力和压痕刚度。结果:人体椎体的下沉量度随压头位置的变化而变化:随着外压位置的增加,破坏力更高,压头的沉降更少。泡沫块中的沉降量度对压头的大小/位置不敏感。它们在中央放置类似于人的椎骨,但在周边放置的压头与人的椎骨相似。尽管合成椎骨的下陷措施对压头的大小/位置很敏感,但对于中央放置和周边放置的压头,高估了破坏力和压痕刚度,而低估了沉陷。结论:合成终板正确地代表了人类终板的几何形状,因此,合成椎骨的破坏力,刚度和下沉对压头的大小/位置很敏感。但是,终板过强,因此合成椎骨无法准确地模拟人体尸体中的压痕下陷。对于居中放置的压头,泡沫块比合成椎骨能更准确地捕获下沉量,但由于其均匀的密度,不足以捕获由不同压头大小/位置产生的变化。当前的骨替代物在材料特性分布方面不够准确,无法完全模拟人体尸体椎骨的沉降。

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