Understanding the microstructural role of bio-sourced 3D printed structures on the tensile performance

被引:31
作者
Guessasma, Sofiane [1 ]
Belhabib, Sofiane [2 ]
Nouri, Hedi [3 ,4 ]
机构
[1] INRA, Biopolymeres Interact Assemblages UR1268, F-44300 Nantes, France
[2] Univ Nantes Angers Le Mans, LUNAM, IUT Nantes, CNRS,GEPEA,UMR 6144, Ave Prof Jean Rouxel, F-44475 Carquefou, France
[3] IMT Lille Douai, 941 Rue Charles Bourseul,CS 10838, F-59508 Douai, France
[4] Univ Sfax, Lab Syst Electromecan LASEM ENIS, Route Soukra Km3,BPW3038, Sfax, Tunisia
关键词
Fused deposition modelling; PLA-Hemp composite; Tensile properties; X-ray micro-tomography; Finite element computation; MECHANICAL PROPERTY; THERMAL-DEGRADATION; POLYLACTIC ACID; PLA; OPTIMIZATION; COMPOSITES; DESIGN; FIBERS; ABS;
D O I
10.1016/j.polymertesting.2019.105924
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
This study aims at revealing the role of microstructural arrangement on the mechanical behaviour of printed PLA-Hemp using Fused Deposition Modelling (FDM). 3D printing is performed by varying the printing temperature. The laying down process is monitored using infra-red measurement. X-ray micro-tomography is used to acquire the 3D microstructure of printed PLA-Hemp. Tensile performance is determined by testing neat and notched specimens. Finite element modelling based on microstructure implementation is conducted to reveal the deformation mechanisms associated with the tensile loading. The results show a wide temperature range for printability of PLA-Hemp but overheating effects characterises the printing using large temperatures ( > 220 degrees C). The tensile performance is found dependent on the printing temperature, a modified filament morphology, and an imperfect nature of the hemp-PLA interface within the filament. Finite element results reveal particular characteristics of stress fields that superpose with underlined microstructure of filament arrangement. Despite this correlation, the low porosity level and the brittle nature of the filament do not allow strong dependence of the crack propagation on the raster orientation.
引用
收藏
页数:14
相关论文
共 42 条
[11]   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
[12]  
Guessasma S., 2016, INT J SIMUL MULTI DE, V6, pA9
[13]   Anisotropic damage inferred to 3D printed polymers using fused deposition modelling and subject to severe compression [J].
Guessasma, Sofiane ;
Belhabib, Sofiane ;
Nouri, Hedi ;
Ben Hassana, Omar .
EUROPEAN POLYMER JOURNAL, 2016, 85 :324-340
[14]   Fracture behavior of additively manufactured acrylonitrile butadiene styrene (ABS) materials [J].
Hart, Kevin R. ;
Wetzel, Eric D. .
ENGINEERING FRACTURE MECHANICS, 2017, 177 :1-13
[15]   Experimental and theoretical investigation of prestressed natural fiber-reinforced polylactic acid (PLA) composite materials [J].
Hinchcliffe, Sean A. ;
Hess, Kristen M. ;
Srubar, Wil V., III .
COMPOSITES PART B-ENGINEERING, 2016, 95 :346-354
[16]  
Kabir M., 2010, EFFECT CHEM TREATMEN, P439
[17]  
Koch C., 2017, ADDITIVE MANUFACTURI
[18]   3D printing of wood fibre biocomposites: From mechanical to actuation functionality [J].
Le Duigou, A. ;
Castro, M. ;
Bevan, R. ;
Martin, N. .
MATERIALS & DESIGN, 2016, 96 :106-114
[19]  
Luzanin O, 2013, J TECHNOL PLASTICITY, V38
[20]   The impact of print orientation and raster pattern on fracture toughness in additively manufactured ABS [J].
McLouth, Tait D. ;
Severino, Joseph, V ;
Adams, Paul M. ;
Patel, Dhruv N. ;
Zaldivar, Rafael J. .
ADDITIVE MANUFACTURING, 2017, 18 :103-109