Empirical methodology to determine inherent strains in additive manufacturing

被引:133
作者
Setien, Inaki [1 ]
Chiumenti, Michele [3 ,4 ]
van der Veen, Sjoerd [2 ]
San Sebastian, Maria [1 ]
Garciandia, Fermin [1 ]
Echeverria, Alberto [1 ]
机构
[1] IK4 LORTEK Technol Ctr, Arranomendia Kalea 4A, Ordizia 20240, Spain
[2] ESIRNM, AIRBUS Struct Res & Integrat, 18 Rue Marius Terce, F-31300 Toulouse, France
[3] CIMNE, Bldg C1,Campus Nord UPC,Gran Capitan S-N, E-08034 Barcelona, Spain
[4] Univ Politecn Cataluna, Jordi Girona 1-3,Edifici C1, E-08034 Barcelona, Spain
基金
欧盟地平线“2020”;
关键词
Additive manufacturing; Inherent strain; Finite element modelling; EXPERIMENTAL VALIDATION; PART DISTORTION; RESIDUAL-STRESS; LASER; SIMULATION; MODEL;
D O I
10.1016/j.camwa.2018.05.015
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
Part distortion is a critical issue during Additive Manufacturing (AM) of metallic parts since it prevents this technology from being implemented at industrial level. To this regard, distortion prediction even from design stage has become crucial. Actually, numerical modelling methodologies play an important role here. Different modelling approaches have been developed but one of the most computationally efficient methodology to predict distortion is the so called inherent strain method. In this work an empirical methodology to determine inherent strains is presented. This is the input data in simplified Finite Element (FE) models in order to predict distortion and residual stress fields. These inherent strains are calculated considering layer lumping strategies that might be adopted in the numerical model as well. The procedure has been developed and validated using the well-known twin-cantilever beam structure. Ti-6Al-4V beams have been manufactured by LPBF technology following different scanning strategies. Distortion after support removal has been measured in order to be compared against numerical results. The methodology has been applied at coupon level giving accurate results and providing a preliminary validation. (C) 2018 Elsevier Ltd. All rights reserved.
引用
收藏
页码:2282 / 2295
页数:14
相关论文
共 32 条
[21]  
Lindgren L.-E., 2014, Computational welding mechanics
[22]   Simulation of additive manufacturing using coupled constitutive and microstructure models [J].
Lindgren, Lars-Erik ;
Lundback, Andreas ;
Fisk, Martin ;
Pederson, Robert ;
Andersson, Joel .
ADDITIVE MANUFACTURING, 2016, 12 :144-158
[23]  
Michaleris P, 2011, MINIMIZATION OF WELDING DISTORTION AND BUCKLING: MODELLING AND IMPLEMENTATION, P3
[24]  
Murakawa H, 1998, MAT MODELLING SER, P597
[25]  
Pal D., 2015, TMS2015
[26]   Numerical Computation of Component Shape Distortion Manufactured by Selective Laser Melting [J].
Papadakis, L. ;
Loizou, A. ;
Risse, J. ;
Schrage, J. .
PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON MANUFACTURING OF LIGHTWEIGHT COMPONENTS: MANULIGHT 2014, 2014, 18 :90-95
[27]  
Patil N., 2014, THESIS, DOI [10.18297/etd/1099, DOI 10.18297/ETD/1099]
[28]   Simulation of metallic powder bed additive manufacturing processes with the finite element method: A critical review [J].
Schoinochoritis, Babis ;
Chantzis, Dimitrios ;
Salonitis, Konstantinos .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART B-JOURNAL OF ENGINEERING MANUFACTURE, 2017, 231 (01) :96-117
[29]  
Tsai C., 1995, MODELING STRATEGY CO
[30]  
Ueda Y, 2012, WELDING DEFORMATION AND RESIDUAL STRESS PREVENTION, P1