Multiphysics optimization of additive manufacturing of hemp fiber reinforced polylactic acid composite honeycomb structures

IF 10.3 1区 工程技术 Q1 ENGINEERING, MANUFACTURING
Kandy Benié , Abel Cherouat , Thierry Barrière , Vincent Placet
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Abstract

This paper focuses on optimizing the additive manufacturing of a hemp/PolyLactic Acid composite honeycomb structure using the pellet-based 3D printing as material extrusion process. Based on the Diffusion, Coalescence, Crystallization (DCC) model recently introduced in the literature, this study proposes an optimization of the process parameters to maximize the compression properties of the printed bio-composite honeycomb structure. During 3D printing, the deposition of new strands tends to change the temperature in the previously printed strands. Using the thermal properties of PLA-hemp bio-composite and printing parameters, the Backward Differentiation Formula implicit method was used for solving the numerical simulation of the heat transfer during the printing of successive layers in order to calculate the temperature distribution and history. The heat transfer process was modeled by the transient heat conduction equation and the boundary conditions. At the end of simulations, the temperatures at the interface of the strands were used from probes positioned at each thermal contact and measuring the average temperature of the interface to calculate the DCC parameter. The mechanical performance of bio-composite PLA/hemp honeycomb structure was evaluated discussed using different machine parameters combinations as extrusion temperature, layer height, flow speed and platform temperature. The obtained results showed that minimizing the layer height while maximizing the extrusion temperature, the build platform temperature and the printing flow speed effectively enhances the compression properties of the structure. Experimental measurements of the axial compressive modulus and strength of the honeycomb structure validated these findings and highlighted the improved interlayer adhesion achieved by employing the best process parameters.
麻纤维增强聚乳酸复合材料蜂窝结构增材制造的多物理场优化
本文重点研究了以颗粒为基础的3D打印为材料挤压工艺,对大麻/聚乳酸复合材料蜂窝结构的增材制造进行优化。基于文献中介绍的扩散、聚结、结晶(Diffusion, Coalescence, Crystallization, DCC)模型,本研究提出了一种优化工艺参数的方法,以最大限度地提高生物复合材料蜂窝结构的压缩性能。在3D打印过程中,新链的沉积往往会改变先前打印链的温度。利用PLA-hemp生物复合材料的热学性能和打印参数,采用后向微分公式隐式方法求解连续层打印过程的传热数值模拟,计算温度分布和历史。采用瞬态热传导方程和边界条件对传热过程进行了模拟。在模拟结束时,利用放置在每个热接触处的探针测量线的界面温度,并测量界面的平均温度来计算DCC参数。在挤出温度、层高、流速和平台温度等不同机器参数组合下,对生物复合材料PLA/hemp蜂窝结构的力学性能进行了评价。结果表明,在最大限度地提高挤出温度、构建平台温度和打印速度的同时,减小层高可以有效地提高结构的压缩性能。蜂窝结构的轴向压缩模量和强度的实验测量验证了这些发现,并强调了通过采用最佳工艺参数实现的层间附着力的改善。
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来源期刊
Additive manufacturing
Additive manufacturing Materials Science-General Materials Science
CiteScore
19.80
自引率
12.70%
发文量
648
审稿时长
35 days
期刊介绍: Additive Manufacturing stands as a peer-reviewed journal dedicated to delivering high-quality research papers and reviews in the field of additive manufacturing, serving both academia and industry leaders. The journal's objective is to recognize the innovative essence of additive manufacturing and its diverse applications, providing a comprehensive overview of current developments and future prospects. The transformative potential of additive manufacturing technologies in product design and manufacturing is poised to disrupt traditional approaches. In response to this paradigm shift, a distinctive and comprehensive publication outlet was essential. Additive Manufacturing fulfills this need, offering a platform for engineers, materials scientists, and practitioners across academia and various industries to document and share innovations in these evolving technologies.
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