ON MULTIPHYSICS DISCRETE ELEMENT MODELING OF POWDER-BASED ADDITIVE MANUFACTURING PROCESSES

被引:0
作者
Steuben, John C. [1 ]
Iliopoulos, Athanasios P. [1 ]
Michopoulos, John G. [1 ]
机构
[1] Naval Res Lab, Ctr Mat Phys & Technol, Computat Multiphys Syst Lab, Washington, DC 20375 USA
来源
PROCEEDINGS OF THE ASME INTERNATIONAL DESIGN ENGINEERING TECHNICAL CONFERENCES AND COMPUTERS AND INFORMATION IN ENGINEERING CONFERENCE, 2016, VOL 1A | 2016年
关键词
METAL POWDERS; MECHANICAL-PROPERTIES; LASER; FABRICATION; DEM; DEPOSITION; COMPONENTS; TECHNOLOGY; SIMULATION; BEHAVIOR;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Physically accurate modeling of powder-based additive manufacturing (AM) processes can play an enabling role for both the certification and qualification as well as the functional tailoring of materials produced by these processes. In an effort to address these needs in a computationally efficient and physically realistic manner, this paper presents the initial efforts towards the development of a methodology for simulating polydisperse particle based AM processes by the use of the Multiphysics Discrete Element Method (MDEM). We discuss the formulation of a DEM framework for addressing the unique multiphysics behavior of AM materials and processes. In particular, we focus on coupled thermo-mechanical effects that result in residual strains and deformation. The MDEM approach is demonstrated on several test problems involving laser sintering of metal powders. The paper concludes with a discussion on how this approach may be generalized to broader classes of AM systems, and details are given regarding future work that must be accomplished in order to further develop the present methodology.
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页数:14
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共 78 条
[31]  
Jing L., 2007, Developments in Geotechnical Engineering
[32]   Models, algorithms and validation for opensource DEM and CFD-DEM [J].
Kloss, Christoph ;
Goniva, Christoph ;
Hager, Alice ;
Amberger, Stefan ;
Pirker, Stefan .
PROGRESS IN COMPUTATIONAL FLUID DYNAMICS, 2012, 12 (2-3) :140-152
[33]   Review and extension of normal force models for the Discrete Element Method [J].
Kruggel-Emden, H. ;
Simsek, E. ;
Rickelt, S. ;
Wirtz, S. ;
Scherer, V. .
POWDER TECHNOLOGY, 2007, 171 (03) :157-173
[34]   Binding mechanisms in selective laser sintering and selective laser melting [J].
Kruth, JP ;
Mercelis, P ;
Van Vaerenbergh, J ;
Froyen, L ;
Rombouts, M .
RAPID PROTOTYPING JOURNAL, 2005, 11 (01) :26-36
[35]   Lasers and materials in selective laser sintering [J].
Kruth, JP ;
Wang, X ;
Laoui, T ;
Froyen, L .
ASSEMBLY AUTOMATION, 2003, 23 (04) :357-371
[36]   Selective laser melting of iron-based powder [J].
Kruth, JP ;
Froyen, L ;
Van Vaerenbergh, J ;
Mercelis, P ;
Rombouts, M ;
Lauwers, B .
JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2004, 149 (1-3) :616-622
[37]   Practical considerations and capabilities for laser assisted direct metal deposition [J].
Lewis, GK ;
Schlienger, E .
MATERIALS & DESIGN, 2000, 21 (04) :417-423
[38]   Additive Manufacturing Technology (Direct Metal Laser Sintering) as a Novel Approach to Fabricate Functionally Graded Titanium Implants: Preliminary Investigation of Fabrication Parameters [J].
Lin, Wei-Shao ;
Starr, Thomas L. ;
Harris, Bryan T. ;
Zandinejad, Amirali ;
Morton, Dean .
INTERNATIONAL JOURNAL OF ORAL & MAXILLOFACIAL IMPLANTS, 2013, 28 (06) :1490-1495
[39]   DEM speedup: Stiffness effects on behavior of bulk material [J].
Lommen, Stef ;
Schott, Dingena ;
Lodewijks, Gabriel .
PARTICUOLOGY, 2014, 12 :107-112
[40]   Cohesive, frictional powders: contact models for tension [J].
Luding, Stefan .
GRANULAR MATTER, 2008, 10 (04) :235-246