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细丝取向对3D打印结构拉伸刚度的影响——数值与实验研究

The Influence of Filament Orientation on Tensile Stiffness in 3D Printed Structures-Numerical and Experimental Studies.

作者信息

Bartosiak Rafał, Kaźmierczyk Filip, Czapski Paweł

机构信息

Department of Strength of Materials, Faculty of Mechanical Engineering, Lodz University of Technology, Stefanowskiego 1/15, 90-537 Lodz, Poland.

出版信息

Materials (Basel). 2023 Jul 31;16(15):5391. doi: 10.3390/ma16155391.

Abstract

The present study provides a thorough analysis of the influence of filament orientation on the tensile stiffness of 3D-printed structures. This exploration employs a combination of numerical simulations and experimental trials, providing an extensive understanding of additive manufacturing, particularly 3D printing. This process involves layer-by-layer material deposition to produce three-dimensional objects. The examination specifically targets PLA-based 3D printed structures created using Fused Filament Fabrication (FFF) technology and subjects them to rigorous evaluations using a universal tensile testing machine. Additionally, this approach combines Representative Volume Element (RVE) and Classical Lamination Theory (CLT) techniques to extrapolate the mechanical properties of the test material. Although the initial methodology faces challenges in determining the shear modulus with precision, an in-depth investigation results in enhanced accuracy. Furthermore, this study introduces a parametric RVE numerical method, demonstrating its resilience in handling sensitivity to shear modulus. A comparative study of results derived from both the analytical methods and experimental trials involving five series of samples with varied layups reveals that the newly proposed numerical method shows a stronger correlation with the experimental outcomes, delivering a relative error margin of up to 8%.

摘要

本研究全面分析了细丝取向对3D打印结构拉伸刚度的影响。该探索采用了数值模拟和实验试验相结合的方法,对增材制造,特别是3D打印有了广泛的理解。这个过程涉及逐层材料沉积以制造三维物体。该研究具体针对使用熔融长丝制造(FFF)技术创建的基于聚乳酸(PLA)的3D打印结构,并使用万能拉伸试验机对其进行严格评估。此外,该方法结合了代表性体积单元(RVE)和经典层合理论(CLT)技术来推断测试材料的力学性能。尽管初始方法在精确确定剪切模量方面面临挑战,但深入研究提高了准确性。此外,本研究引入了一种参数化RVE数值方法,证明了其在处理对剪切模量敏感性方面的适应性。对涉及五个不同铺层系列样品的分析方法和实验试验结果的比较研究表明,新提出的数值方法与实验结果的相关性更强,相对误差幅度高达8%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d23d/10419418/5d3d5b9f8626/materials-16-05391-g001.jpg

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