增材制造人工股骨的生物力学验证。

F Metzner, C Neupetsch, A Carabello, M Pietsch, T Wendler, W-G Drossel
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引用次数: 1

摘要

复制人类骨骼的机械行为,特别是松质骨组织,是具有挑战性的。一般来说,传统的骨骼模型主要是由一个固体外壳包围的聚氨酯泡沫组成。虽然几乎各向同性的泡沫成分具有类似松质骨的力学性能,但它们并不代表骨结构的各向异性和非均匀性。考虑到骨的结构,建立了基于CT数据的模型,其核心是增材制造的。这个核心随后被涂上了玻璃纤维复合材料。采用不同材料和不同填充物水平的熔丝制备技术制备了具有陀螺结构的样品。随后的压缩试验表明,打印标本的力学行为与人骨之间有很好的一致性。单向玻璃纤维复合材料在三点弯曲试验中表现出比人类皮质骨更高的强度和刚度,并观察到类似的材料行为。在整个装配体的生物力学研究中,在受控条件下将股骨假体茎插入人工骨和人骨,同时记录发生的力和应变。所有由不同材料制成的人造原型都表现出与人类骨骼相似的行为。综上所述,低成本FFF技术可用于生成有效的骨模型,并通过改变填充物选择性地改变其特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Biomechanical validation of additively manufactured artificial femoral bones.

Replicating the mechanical behavior of human bones, especially cancellous bone tissue, is challenging. Typically, conventional bone models primarily consist of polyurethane foam surrounded by a solid shell. Although nearly isotropic foam components have mechanical properties similar to cancellous bone, they do not represent the anisotropy and inhomogeneity of bone architecture. To consider the architecture of bone, models were developed whose core was additively manufactured based on CT data. This core was subsequently coated with glass fiber composite. Specimens consisting of a gyroid-structure were fabricated using fused filament fabrication (FFF) techniques from different materials and various filler levels. Subsequent compression tests showed good accordance between the mechanical behavior of the printed specimens and human bone. The unidirectional fiberglass composite showed higher strength and stiffness than human cortical bone in 3-point bending tests, with comparable material behaviors being observed. During biomechanical investigation of the entire assembly, femoral prosthetic stems were inserted into both artificial and human bones under controlled conditions, while recording occurring forces and strains. All of the artificial prototypes, made of different materials, showed analogous behavior to human bone. In conclusion, it was shown that low-cost FFF technique can be used to generate valid bone models and selectively modify their properties by changing the infill.

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