Fused Filament Fabrication Process: A Review of Numerical Simulation Techniques

被引:66
作者
Al Rashid, Ans [1 ]
Koc, Muammer [1 ,2 ]
机构
[1] Hamad Bin Khalifa Univ, Qatar Fdn, Coll Sci & Engn, Div Sustainable Dev, Doha 34110, Qatar
[2] Univ Karabuk, Fac Engn, TR-78050 Karabuk, Turkey
关键词
additive manufacturing; 3D printing; computational modeling; simulation technique; computational fluid dynamics; FIBER ORIENTATION; BONDING QUALITY; POLYMER; BEHAVIOR; PART; DEFORMATION; TEMPERATURE; COALESCENCE; MODEL;
D O I
10.3390/polym13203534
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Three-dimensional printing (3DP), also known as additive manufacturing (AM), has rapidly evolved over the past few decades. Researchers around the globe have been putting their efforts into AM processes improvement and materials development. One of the most widely used extrusion-based technology under AM processes is Fused Deposition Modeling (FDM), also known as Fused Filament Fabrication (FFF). Numerical simulation tools are being employed to predict the FFF process complexities and material behavior. These tools allow exploring candidate materials for their potential use in the FFF process and process improvements. The prime objective of this study is to provide a comprehensive review of state-of-the-art scientific achievements in numerical simulations of the FFF process for polymers and their composites. The first section presents an in-depth discussion of the FFF process's physical phenomena and highlights the multi-level complexity. The subsequent section discusses the research efforts, specifically on numerical simulation techniques reported in the literature for simulation of the FFF process. Finally, conclusions are drawn based on the reviewed literature, and future research directions are identified.</p>
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页数:20
相关论文
共 87 条
[21]   Effect of recycling on the mechanical behavior and structure of additively manufactured acrylonitrile butadiene styrene (ABS) [J].
Cress, Alex K. ;
Huynh, Jimmy ;
Anderson, Eric H. ;
O'neill, Ryan ;
Schneider, Yanika ;
Keles, Ozgur .
JOURNAL OF CLEANER PRODUCTION, 2021, 279
[22]  
Crump S.S., 1992, US Patent, Patent No. [5,121,329, 5121329]
[23]  
Danoglidis P.A., 2015, P SEM ANN C EXP EXP
[24]  
Diegel O., 2019, Springer Ser. Adv. Manuf, P19, DOI [10.1007/978-981-13-8281-92, DOI 10.1007/978-981-13-8281-92]
[25]   Suitability of PLA/TCP for fused deposition modeling [J].
Drummer, Dietmar ;
Cifuentes-Cuellar, Sandra ;
Rietzel, Dominik .
RAPID PROTOTYPING JOURNAL, 2012, 18 (06) :500-507
[26]   What makes a material printable? A viscoelastic model for extrusion-based 3D printing of polymers [J].
Duty, Chad ;
Ajinjeru, Christine ;
Kishore, Vidya ;
Compton, Brett ;
Hmeidat, Nadim ;
Chen, Xun ;
Liu, Peng ;
Hassen, Ahmed Arabi ;
Lindahl, John ;
Kunc, Vlastimil .
JOURNAL OF MANUFACTURING PROCESSES, 2018, 35 :526-537
[27]  
Favaloro A.J., 2017, Sci. Age Exp, P103
[28]   Effects of material properties on warpage in fused deposition modeling parts [J].
Fitzharris, Emily R. ;
Watanabe, Narumi ;
Rosen, David W. ;
Shofner, Meisha L. .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2018, 95 (5-8) :2059-2070
[29]  
Folgar F., 1984, J. Reinf. Plast. Compos, V3, P98, DOI DOI 10.1177/073168448400300201
[30]  
Garcia A., 2017, THESIS WICHITA STATE