A method to predict the ultimate tensile strength of 3D printing polylactic acid (PLA) materials with different printing orientations

被引:240
作者
Yao, Tianyun [1 ]
Deng, Zichen [1 ]
Zhang, Kai [1 ]
Li, Shiman [1 ]
机构
[1] Northwestern Polytech Univ, Sch Mech Civil Engn & Architecture, Xian 710072, Shaanxi, Peoples R China
基金
国家重点研发计划;
关键词
3D printing; Transverse isotropy; Anisotropic yield criterion; Ultimate tensile strength; MECHANICAL-PROPERTIES; DEPOSITION; SIMULATION; ORGANS;
D O I
10.1016/j.compositesb.2019.01.025
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
3D Printing is widely used in scientific researches and engineering applications, ranging from aerospace to biomedicine. However little is known about the mechanical properties of 3D printing materials. In order to promote the mechanical analysis and design of 3D printing structures, the ultimate tensile strength of FDM PLA materials with different printing angles were studied theoretically and experimentally. A theoretical model was firstly established to predict the ultimate tensile strength of FDM PLA materials based on transverse isotropic hypothesis, classical lamination theory and Hill-Tsai anisotropic yield criterion, and then verified by tensile experiments. Compared with previous models, this model provided two kinds of in-plane shear modulus calculation methods, so the calculation results were more reliable. The specimens, designed according to the current plastic-multipurpose test specimens standard ISO 527-2-2012, were printed in seven different angles (0 degrees, 15, 30, 45, 60, 75, 90) with three layer thicknesses (0.1 nun, 0.2 mm, 0.3 mm) for each angle. The relative residual sum of squares between theoretical data and experimental data were all close to zero, so the results that the theoretical model can accurately predict the ultimate tensile strength of FDM materials for all angles and thicknesses were confirmed. It was also found that the ultimate tensile strength decreased as the printing angle becomes smaller or the layer becomes thicker. This theoretical model and experimental method can also be applied to other 3D printing materials fabricated by FDM or SLA techniques.
引用
收藏
页码:393 / 402
页数:10
相关论文
共 38 条
[1]  
Agarwala M., 1992, INT J POWDER METALL, V1, P26
[2]   Anisotropic material properties of fused deposition modeling ABS [J].
Ahn, SH ;
Montero, M ;
Odell, D ;
Roundy, S ;
Wright, PK .
RAPID PROTOTYPING JOURNAL, 2002, 8 (04) :248-257
[3]   Elastic properties of 3D printed fibre-reinforced structures [J].
Al Abadi, Haider ;
Huu-Tai Thai ;
Paton-Cole, Vidal ;
Patel, V. I. .
COMPOSITE STRUCTURES, 2018, 193 :8-18
[4]  
[Anonymous], 2006, ADDITIVE MANUFACTURI
[5]  
[Anonymous], COMPOSITES B
[6]   Orthotropic mechanical properties of fused deposition modelling parts described by classical laminate theory [J].
Casavola, Caterina ;
Cazzato, Alberto ;
Moramarco, Vincenzo ;
Pappalettere, Carmine .
MATERIALS & DESIGN, 2016, 90 :453-458
[7]   Mechanical property characterization and simulation of fused deposition modeling Polycarbonate parts [J].
Domingo-Espin, Miquel ;
Puigoriol-Forcada, Josep M. ;
Garcia-Granada, Andres-Amador ;
Lluma, Jordi ;
Borros, Salvador ;
Reyes, Guillermo .
MATERIALS & DESIGN, 2015, 83 :670-677
[8]   Effect of layer orientation on mechanical properties of rapid prototyped samples [J].
Es-Said, OS ;
Foyos, J ;
Noorani, R ;
Mendelson, M ;
Marloth, R ;
Pregger, BA .
MATERIALS AND MANUFACTURING PROCESSES, 2000, 15 (01) :107-122
[9]   Experimental investigations on fused deposition modelling of polymer-layered silicate nanocomposite [J].
Francis, Vishal ;
Jain, Prashant K. .
VIRTUAL AND PHYSICAL PROTOTYPING, 2016, 11 (02) :109-121
[10]  
Guvendiren M., 2017, FRONT BIOENG BIOTECH, V5