Aziz Alia Ruzanna, Zhou Jin, Thorne David, Cantwell Wesley James
Advanced Materials Research Centre, Technology Innovation Institute, Abu Dhabi 9639, United Arab Emirates.
School of Mechanical Engineering, Xi'an Jiaotong University, Xi'an 710049, China.
Polymers (Basel). 2021 Nov 17;13(22):3967. doi: 10.3390/polym13223967.
This paper investigates size effects on the mechanical response of additively manufactured lattice structures based on a commercially available polylactic acid (PLA) polymer. Initial attention is focused on investigating geometrical effects in the mechanical properties of simple beams and cubes. Following this, a number of geometrically scaled lattice structures based on the body-centered cubic design were manufactured and tested in order to highlight size effects in their compression properties and failure modes. A finite element analysis was also conducted in order to compare the predicted modes of failure with those observed experimentally. Scaling effects were observed in the compression response of the PLA cubes, with the compression strength increasing by approximately 19% over the range of scale sizes investigated. Similar size-related effects were observed in the flexural samples, where a brittle mode of failure was observed at all scale sizes. Here, the flexural strength increased by approximately 18% when passing from the quarter size sample to its full-scale counterpart. Significant size effects were observed following the compression tests on the scaled lattice structures. Here, the compression strength increased by approximately 60% over the four sample sizes, in spite of the fact that similar failure modes were observed in all samples. Finally, reasonably good agreement was observed between the predicted failure modes and those observed experimentally. However, the FE models tended to over-estimate the mechanical properties of the lattice structures, probably as a result of the fact that the models were assumed to be defect free.
本文基于市售聚乳酸(PLA)聚合物,研究增材制造晶格结构的尺寸效应如何影响其力学响应。最初的关注点是研究简单梁和立方体力学性能中的几何效应。在此之后,制造并测试了一些基于体心立方设计的几何比例缩放晶格结构,以突出其压缩性能和失效模式中的尺寸效应。还进行了有限元分析,以便将预测的失效模式与实验观察到的模式进行比较。在PLA立方体的压缩响应中观察到了缩放效应,在所研究的比例尺寸范围内,压缩强度提高了约19%。在弯曲样本中也观察到了类似的尺寸相关效应,在所有比例尺寸下均观察到脆性失效模式。在此,从四分之一尺寸样本到全尺寸样本时,弯曲强度提高了约18%。在对缩放后的晶格结构进行压缩测试后,观察到了显著的尺寸效应。尽管在所有样本中观察到了类似的失效模式,但在这四个样本尺寸范围内,压缩强度提高了约60%。最后,预测的失效模式与实验观察到的模式之间观察到了合理的良好一致性。然而,有限元模型往往高估了晶格结构的力学性能,这可能是因为模型被假定为无缺陷的缘故。