Lei Mingju, Wang Yanen, Wei Qinghua, Li Mingyang, Zhang Juan, Wang Yanmei
Industry Engineering Department, School of Mechanical Engineering, Northwestern Polytechnical University, Xi'an, P.R. China.
School of Mechatronic Engineering, Xinjiang Institute of Engineering, Urumqi, China.
3D Print Addit Manuf. 2024 Oct 22;11(5):e1863-e1876. doi: 10.1089/3dp.2023.0131. eCollection 2024 Oct.
The varied material and the inherent complex microstructure make predicting the effective stiffness of fused deposition modeling (FDM) printed polylactic acid (PLA)/carbon fiber (CF) composite a troublesome problem. This article proposes a microstructure scanning electron microscope (SEM) mapping modeling and numerical mean procedure to calculate the effective stiffness of FDM printing PLA/CF laminates. The printed PLA/CF parts were modeled as a continuum of 3D uniform linear elasticity with orthotropic anisotropy, and their elastic behavior was characterized by orthotropic constitutive relations. Micromechanical models of two typical deposition configurations, 0° unidirectional aligned configuration and 0°/90° angle-ply configuration of the printed parts were established based on the periodic representative volume element (RVE) technique. The elastic constants of the RVE models were estimated by volume average method in the finite element stress analysis, and the effects of deposition configurations, CF length, and content on the effective stiffness were also investigated. The results show that the effective stiffness of FDM printing PLA/CF composite is closely related to CF length, content, and the deposition configuration. With the increase of CF length and content, the Young's modulus and shear modulus of printed PLA/CF parts increase, whereas Poisson's ratio decreases. The printed PLA/CF parts with 0° unidirectional aligned configuration exhibits orthotropic characteristics, and the maximum Young's modulus appears along the first axis. The 0°/90° angle-ply FDM PLA/CF composite exhibits transverse isotropic characteristics and the lowest Young's modulus is found along the thickness direction.
材料的多样性以及固有的复杂微观结构使得预测熔融沉积成型(FDM)打印的聚乳酸(PLA)/碳纤维(CF)复合材料的有效刚度成为一个棘手的问题。本文提出了一种微观结构扫描电子显微镜(SEM)映射建模和数值平均程序,以计算FDM打印PLA/CF层压板的有效刚度。将打印的PLA/CF零件建模为具有正交各向异性的三维均匀线弹性连续体,其弹性行为由正交各向异性本构关系表征。基于周期性代表性体积单元(RVE)技术,建立了打印零件的两种典型沉积构型(0°单向排列构型和0°/90°角铺层构型)的细观力学模型。通过有限元应力分析中的体积平均法估算RVE模型的弹性常数,并研究了沉积构型、CF长度和含量对有效刚度的影响。结果表明,FDM打印PLA/CF复合材料的有效刚度与CF长度、含量和沉积构型密切相关。随着CF长度和含量的增加,打印的PLA/CF零件的杨氏模量和剪切模量增加,而泊松比减小。具有0°单向排列构型的打印PLA/CF零件表现出正交各向异性特征,最大杨氏模量出现在第一轴方向。0°/90°角铺层FDM PLA/CF复合材料表现出横向各向同性特征,沿厚度方向的杨氏模量最低。