Optimisation of printing parameters of fused filament fabrication and uniaxial compression failure analysis for four-point star-shaped structures

IF 3.4 4区 工程技术 Q1 ENGINEERING, MECHANICAL
J. Wambua, Fredrick Mwema, Stephen Akinlabi, Martin Birkett, Ben Xu, Wai Lok Woo, Mike Taverne, Ying-Lung Daniel Ho, Esther Akinlabi
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Abstract

Purpose The purpose of this paper is to present an optimisation of four-point star-shaped structures produced through additive manufacturing (AM) polylactic acid (PLA). The study also aims to investigate the compression failure mechanism of the structure. Design/methodology/approach A Taguchi L9 orthogonal array design of the experiment is adopted in which the input parameters are resolution (0.06, 0.15 and 0.30 mm), print speed (60, 70 and 80 mm/s) and bed temperature (55°C, 60°C, 65°C). The response parameters considered were printing time, material usage, compression yield strength, compression modulus and dimensional stability. Empirical observations during compression tests were used to evaluate the load–response mechanism of the structures. Findings The printing resolution is the most significant input parameter. Material length is not influenced by the printing speed and bed temperature. The compression stress–strain curve exhibits elastic, plateau and densification regions. All the samples exhibit negative Poisson’s ratio values within the elastic and plateau regions. At the beginning of densification, the Poisson’s ratios change to positive values. The metamaterial printed at a resolution of 0.3 mm, 80 mm/s and 60°C exhibits the best mechanical properties (yield strength and modulus of 2.02 and 58.87 MPa, respectively). The failure of the structure occurs through bending and torsion of the unit cells. Practical implications The optimisation study is significant for decision-making during the 3D printing and the empirical failure model shall complement the existing techniques for the mechanical analysis of the metamaterials. Originality/value To the best of the authors’ knowledge, for the first time, a new empirical model, based on the uniaxial load response and “static truss concept”, for failure mechanisms of the unit cell is presented.
四点星形结构的熔融长丝制造印刷参数优化和单轴压缩失效分析
目的 本文旨在介绍通过增材制造(AM)聚乳酸(PLA)生产的四点星形结构的优化。采用田口 L9 正交阵列实验设计,输入参数为分辨率(0.06、0.15 和 0.30 毫米)、打印速度(60、70 和 80 毫米/秒)和床温(55°C、60°C、65°C)。考虑的响应参数包括打印时间、材料用量、压缩屈服强度、压缩模量和尺寸稳定性。压缩试验期间的经验观察用于评估结构的负载响应机制。材料长度不受印刷速度和床温的影响。压缩应力-应变曲线显示出弹性、高原和致密化区域。在弹性区和高原区,所有样品的泊松比均为负值。在开始致密化时,泊松比变为正值。在分辨率为 0.3 毫米、速度为 80 毫米/秒、温度为 60°C 的条件下打印的超材料具有最佳的机械性能(屈服强度和模量分别为 2.02 和 58.87 兆帕)。据作者所知,这是首次提出基于单轴载荷响应和 "静态桁架概念 "的全新超材料单元失效机制经验模型。
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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来源期刊
Rapid Prototyping Journal
Rapid Prototyping Journal 工程技术-材料科学:综合
CiteScore
8.30
自引率
10.30%
发文量
137
审稿时长
4.6 months
期刊介绍: Rapid Prototyping Journal concentrates on development in a manufacturing environment but covers applications in other areas, such as medicine and construction. All papers published in this field are scattered over a wide range of international publications, none of which actually specializes in this particular discipline, this journal is a vital resource for anyone involved in additive manufacturing. It draws together important refereed papers on all aspects of AM from distinguished sources all over the world, to give a truly international perspective on this dynamic and exciting area. -Benchmarking – certification and qualification in AM- Mass customisation in AM- Design for AM- Materials aspects- Reviews of processes/applications- CAD and other software aspects- Enhancement of existing processes- Integration with design process- Management implications- New AM processes- Novel applications of AM parts- AM for tooling- Medical applications- Reverse engineering in relation to AM- Additive & Subtractive hybrid manufacturing- Industrialisation
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