Effect of the Material Extrusion Process Parameters on the Compressive Properties of Additively Manufactured Foamed and Nonfoamed Polylactic Acid Structures

被引:7
作者
Yousefi Kanani, Armin [1 ,2 ]
Kennedy, Andrew [2 ]
机构
[1] Univ Kent, Sch Engn, Mechan Engn Grp, Canterbury, Kent, England
[2] Univ Lancaster, Sch Engn, Engn Bldg, Lancaster, England
关键词
additive manufacturing; material extrusion; foamable polylactic acid filament; porous structures; lightweight structures; 3D; PARTS; MECHANISMS; POLYMERS; STRENGTH; TENSILE;
D O I
10.1089/3dp.2022.0091
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This work evaluates the potential for foamable polymer filaments to be used to make lightweight, energy-absorbing structures using additive manufacturing. To achieve this, a commercial, foamable polylactic acid filament was extruded using a material extrusion process to make parts for compression testing. It was found that a maximum foam expansion could be achieved at an extrusion nozzle temperature of 220 degrees C, but that to achieve dimensional accuracy, the material flow rate through the nozzle had to be adjusted by decreasing the extrusion multiplier value. In a novel approach, accurate and faster builds could be achieved by decreasing the infill instead. When compared with porous structures achieved by using partial infilling instead or as well as foaming, all materials were found to follow the same power-law function of the solid fraction. These trends indicated that the mechanical response was, within experimental scatter, a function of the overall solid fraction and not influenced by whether the porosity was within or between the raster lines. Although there was no apparent benefit to the mechanical performance in introducing porosity into a polymer by foaming, foamable filaments are desirable if stiff, lightweight structures with low fractions of interconnected porosity are required and can be used in combination with infilling to produce low-density structures that would be highly suitable for cores in novel lightweight sandwich structures.
引用
收藏
页码:207 / 218
页数:12
相关论文
共 34 条
[1]   Process-structure-property effects on ABS bond strength in fused filament fabrication [J].
Abbott, A. C. ;
Tandon, G. P. ;
Bradford, R. L. ;
Koerner, H. ;
Baur, J. W. .
ADDITIVE MANUFACTURING, 2018, 19 :29-38
[2]   Effect of Filling Pattern on the Tensile and Flexural Mechanical Properties of FDM 3D Printed Products [J].
Akhoundi, B. ;
Behravesh, A. H. .
EXPERIMENTAL MECHANICS, 2019, 59 (06) :883-897
[3]  
Ashby M.F., 2011, Materials Selection in Mechanical Design, V4th, P646, DOI DOI 10.1016/C2009-0-25539-5
[4]   Rapid development of dual porous poly(lactic acid) foam using fused deposition modeling (FDM) 3D printing for medical scaffold application [J].
Choi, Won Jun ;
Hwang, Ki Seob ;
Kwon, Hyuk Jun ;
Lee, Chanmin ;
Kim, Chae Hwa ;
Kim, Tae Hee ;
Heo, Seung Won ;
Kim, Jung-Hyun ;
Lee, Jun-Young .
MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2020, 110
[5]   From gas release to foam synthesis, the second breath of blowing agents [J].
Coste, Guilhem ;
Negrell, Claire ;
Caillol, Sylvain .
EUROPEAN POLYMER JOURNAL, 2020, 140
[6]   Porous PLAs with Controllable Density by FDM 3D Printing and Chemical Foaming Agent [J].
Damanpack, A. R. ;
Sousa, Andre ;
Bodaghi, M. .
MICROMACHINES, 2021, 12 (08)
[7]   Foaming of polymers with supercritical fluids and perspectives on the current knowledge gaps and challenges [J].
Di Maio, Ernesto ;
Kiran, Erdogan .
JOURNAL OF SUPERCRITICAL FLUIDS, 2018, 134 :157-166
[8]   Mechanical properties of CF-reinforced PLA parts manufactured by fused deposition modeling [J].
El Magri, Anouar ;
El Mabrouk, Khalil ;
Vaudreuil, Sebastien ;
Touhami, Mohamed Ebn .
JOURNAL OF THERMOPLASTIC COMPOSITE MATERIALS, 2021, 34 (05) :581-595
[9]   Dimensional considerations on the mechanical properties of 3D printed polymer parts [J].
Elmrabet, Nabila ;
Siegkas, Petros .
POLYMER TESTING, 2020, 90
[10]   Polyurethane Foams: Past, Present, and Future [J].
Gama, Nuno V. ;
Ferreira, Artur ;
Barros-Timmons, Ana .
MATERIALS, 2018, 11 (10)