FDM 3D-PRINTED THERMOPLASTIC ELASTOMERS: EXPERIMENTS, MODELING, AND INFLUENCE OF PROCESS PARAMETERS ON PROPERTIES

被引:0
作者
Hripko, Brad [1 ]
Hoover, Luke [1 ]
Damodara, Priyadarsini [1 ]
Reissman, Timothy [1 ]
Lowe, Robert [1 ]
机构
[1] Univ Dayton, Dept Mech & Aerosp Engn, Dayton, OH 45469 USA
来源
PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2019, VOL 2A | 2019年
关键词
3D printing; additive manufacturing; FDM; elastomer; process parameters; mechanical properties; constitutive modeling; finite element; prosthetic;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Soft, ultra-stretchable thermoplastic elastomers have recently became available for use with desktop, fused deposition modeling printers. However, the effects of additive manufacturing process parameters on final mechanical properties are presently not well-known for this class of materials, making predictive modeling and product design difficult. Here we perform a design of experiments investigation of an elastomeric material that the manufacturer claims to have up to 580% strain at fracture. Within the investigation, two factors, extrusion temperature and layer height, are selected as independent variables and mechanical properties are extracted as dependent variables based on quasi-static tension tests following ASTM D412. Primary statistical results, based on an Analysis of Variance, indicate that hotter extrusion temperatures exhibit higher Young's moduli (at small strain), lower ultimate tensile strength, and higher fracture strain. Further, the layer thickness is not a factor unless evaluating performance at small strain, in which case it is significant and thicker layers will yield higher Young's moduli. Several popular hyperelastic constitutive models are calibrated to our tensile data, and a preliminary finite-element simulation of a soft prosthetic finger is performed to demonstrate the potential role of predictive simulations in 3D-printed product design.
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页数:6
相关论文
共 11 条
[1]  
ASTM International, 2016, D41216 ASTM
[2]  
Bechtel S.E., 2014, Fundamentals of Continuum Mechanics
[3]  
Hossain Mokarram, 2013, Journal of the Mechanical Behaviour of Materials, V22, P27, DOI 10.1515/jmbm-2012-0007
[4]   A new I1-based hyperelastic model for rubber elastic materials [J].
Lopez-Pamies, Oscar .
COMPTES RENDUS MECANIQUE, 2010, 338 (01) :3-11
[5]  
Ninjaflex, About us
[6]   Fitting hyperelastic models to experimental data [J].
Ogden, RW ;
Saccomandi, G ;
Sgura, I .
COMPUTATIONAL MECHANICS, 2004, 34 (06) :484-502
[7]   FDM process parameters influence over the mechanical properties of polymer specimens: A review [J].
Popescu, Diana ;
Zapciu, Aurelian ;
Amza, Catalin ;
Baciu, Florin ;
Marinescu, Rodica .
POLYMER TESTING, 2018, 69 :157-166
[8]  
Somireddy M, 2017, J MANUF MATER PROC, V1, DOI 10.3390/jmmp1020018
[9]   Hyperelastic models for rubber-like materials: consistent tangent operators and suitability for Treloar's data [J].
Steinmann, Paul ;
Hossain, Mokarram ;
Possart, Gunnar .
ARCHIVE OF APPLIED MECHANICS, 2012, 82 (09) :1183-1217
[10]   Tensile strength of commercial polymer materials for fused filament fabrication 3D printing [J].
Tanikella, Nagendra G. ;
Wittbrodt, Ben ;
Pearce, Joshua M. .
ADDITIVE MANUFACTURING, 2017, 15 :40-47