首页> 外文期刊>Journal of biomedical materials research. Part B, Applied biomaterials. >Influence of cement stiffness and bone morphology on the compressive properties of bone-cement composites in simulated vertebroplasty.
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Influence of cement stiffness and bone morphology on the compressive properties of bone-cement composites in simulated vertebroplasty.

机译:模拟椎体成形术中骨水泥硬度和骨形态对骨水泥复合材料抗压性能的影响。

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摘要

Vertebroplasty is widely used to treat vertebral compression fractures. Little is known about the influence of morphological parameters of the bone on the properties of the bone-cement composite. Furthermore, although generic finite element (FE) models have been suggested as a way to compute the values of these properties, their accuracy has not been established. In the experimental part of this study, we tested bovine cancellous bone and three different polymethylmethacrylate bone cements and determined six quasi-static uniaxial compressive properties of bone-cement composite specimens and 10 morphological parameters of the bone. For the FE work, we used two simulations, one being μFE and the other unit cell FE. In conclusion, we found that (1) for composite specimens, that relative contribution of the cement to the overall response of the composite increases with increasing cement stiffness; (2) the anisotropy ratio is the bone morphological property that exerts the most significant influence on the experimentally obtained compressive properties of the bone-cement composites determined; (3) the accuracy of the computed compressive properties of the composites ranged from low to high, depending on simulation method used. The largest errors, however, can partially be explained by difference in boundary conditions between the experimental testing and the simulation techniques. The lattermost finding points to the potential for simplified FE models being incorporated into automatic material mapping schemes in whole bone vertebra FE simulations.
机译:椎体成形术广泛用于治疗椎体压缩性骨折。关于骨骼的形态参数对骨水泥复合材料性能的影响知之甚少。此外,尽管已建议使用通用有限元(FE)模型作为计算这些属性值的方法,但尚未确定其准确性。在本研究的实验部分,我们测试了牛松质骨和三种不同的聚甲基丙烯酸甲酯骨水泥,并确定了骨水泥复合材料标本的六种准静态单轴压缩特性和十种骨形态学参数。对于有限元工作,我们使用了两个仿真,一个是μFE,另一个是单元电池FE。总之,我们发现(1)对于复合材料样本,水泥对复合材料整体响应的相对贡献随水泥刚度的增加而增加; (2)各向异性比是对实验确定的骨水泥复合材料的压缩性能产生最大影响的骨形态学性能; (3)根据所使用的模拟方法,计算出的复合材料压缩特性的精度范围从低到高。但是,最大的误差可以部分由实验测试和模拟技术之间的边界条件差异来解释。最新发现指出,简化的有限元模型可能会被整合到整个骨骼椎体有限元模拟中的自动材料映射方案中。

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