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Numerical investigation on mechanical properties of cellular lattice structures fabricated by fused deposition modeling

机译:熔融沉积建模制备蜂窝晶格结构力学性能的数值研究

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摘要

Cellular lattice structures (CLS) with designed structural integrity are highly demanded in many applications such as light-weight industrial components and bone scaffold. In recent years, additive manufacturing (AM) processes have been found to be capable of producing such products with controllable porosity and pore sizes. However, AM faces an inherent obstacle so that the CLS strut diameter varies along its length. This study uses finite element modeling to predict the effect of variation in the struts' diameter on the elastic modulus as well as collapse stress of CLS using both beam and solid finite elements. To determine the mechanical behavior of the lattice and bulk material, lattice structures as well as compression test specimens are fabricated using fused deposition modeling. The results show that the beam finite element model is stiffer than the solid one since the beam model cannot capture the effects of material concentration at the points of diameter variations. However, the obtained elastic modulus does not differ significantly between solid and beam models while the difference is not negligible for collapse stress.
机译:具有设计结构完整性的蜂窝晶格结构(CLS)在许多应用中都非常需要,例如轻型工业组件和骨支架。近年来,发现增材制造(AM)工艺能够生产出具有可控制的孔隙率和孔径的产品。但是,AM面临固有的障碍,因此CLS支杆直径沿其长度会变化。这项研究使用有限元建模,使用梁和实体有限元来预测支撑杆直径变化对CLS的弹性模量和坍塌应力的影响。为了确定晶格和块状材料的机械性能,使用熔融沉积模型制造了晶格结构以及压缩试样。结果表明,梁有限元模型比实体模型更坚硬,因为梁模型无法捕获直径变化点处材料集中的影响。但是,所获得的弹性模量在实体模型和梁模型之间没有显着差异,而对于塌陷应力而言,该差异不能忽略。

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