Analysis of crack propagation of PLA fabricated by the additive manufacturing technique

DR. AB Aziz MOHD YUSOF, Abdul Hakim Md Yusop, Haszeme Bin Abu Kasim
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Abstract

Understanding crack propagation is crucial for evaluating the structural integrity and reliability of additive manufacturing components, as cracks can compromise mechanical properties and potentially lead to catastrophic failures. The study of crack propagation in additive manufacturing components is used to develop strategies for mitigating crack initiation and growth, improving material properties, and optimising the design and manufacturing processes. Crack propagation in additive manufacturing components can be influenced by various factors, including material properties, design considerations, manufacturing defects, and loading conditions. Due to the identified issue, the study was carried out to investigate the crack propagation of the Fused Deposition Modeling (FDM) component using compact tension fracture testing. The experimental work started with fabricating the samples using PLA material, followed by a fracture test based on the compact tension specimen test to get a response of the structure and its crack propagation under tensile. Material properties were also collected using the dog bone tensile test. The material properties of the testing were then imported to Finite Element Analysis for further investigation of fracture mechanics. It was found that the maximum force of the sample was 141.7±28N at 1.70±0.26mm displacement, and cracks initiated around the tip and propagated upward or downward based on the initial crack location. The deformation patterns of PLA material have shown it to be brittle plastic deformation and low energy absorption before fracture.
利用增材制造技术制造的聚乳酸裂纹扩展分析
了解裂纹扩展对于评估增材制造部件的结构完整性和可靠性至关重要,因为裂纹会损害机械性能,并可能导致灾难性故障。对快速成型制造部件中裂纹扩展的研究可用于制定策略,以减少裂纹的产生和增长,改善材料性能,优化设计和制造工艺。增材制造部件中的裂纹扩展会受到各种因素的影响,包括材料特性、设计考虑因素、制造缺陷和加载条件。鉴于上述问题,本研究采用紧凑拉伸断裂测试法,对熔融沉积建模(FDM)部件的裂纹扩展进行了研究。实验工作从使用聚乳酸材料制作样品开始,然后在紧凑拉伸试样测试的基础上进行断裂测试,以获得结构在拉伸条件下的响应及其裂纹扩展情况。此外,还使用狗骨拉伸试验收集了材料特性。然后将测试的材料属性导入有限元分析,以进一步研究断裂力学。结果发现,在 1.70±0.26mm 位移时,样品的最大力为 141.7±28N,裂纹从顶端开始,并根据初始裂纹位置向上或向下扩展。聚乳酸材料的变形模式表明其在断裂前具有脆性塑性变形和低能量吸收的特性。
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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