Microstructural characterisation of thick-walled wire arc additively manufactured stainless steel

被引:95
作者
Belotti, L. Palmeira [1 ]
van Dommelen, J. A. W. [1 ]
Geers, M. G. D. [1 ]
Goulas, C. [2 ]
Ya, W. [3 ]
Hoefnagels, J. P. M. [1 ]
机构
[1] Eindhoven Univ Technol, Dept Mech Engn, POB 513, NL-5600 MB Eindhoven, Netherlands
[2] Univ Twente, Fac Engn Technol, Dept Design Prod & Management, POB 217, NL-7500 AE Enschede, Netherlands
[3] RAMLAB BV, Scheepsbouwweg 8 F6, NL-3089 JW Rotterdam, Netherlands
关键词
Wire arc additive manufacturing; Stainless steel; Microstructure; Spatial variations; MECHANICAL-PROPERTIES; COMPONENTS; FERRITE;
D O I
10.1016/j.jmatprotec.2021.117373
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Wire arc additive manufacturing (WAAM) is a class of technologies suitable for producing large parts due to its high material deposition and building rates. Among the many possible materials processed by WAAM, austenitic stainless steels, e.g. 316L, are commonly employed. The structure of WAAM 316L thin parts has been studied extensively before. However, multiwalled or thick WAAM 316L parts remain largely unexplored. Hence, in this study, the microstructure of a thick 316LSi WAAM part is characterised in detail. The microstructure of the part consists of large and highly-oriented columnar grains dominated by epitaxial and competitive growth. The overlapping regions between neighbouring fusion zones contain long grains with a dominant 100 texture, which cross several layers and are aligned with the building direction. The grains' internal microstructure consists of an austenite matrix, ferrite with locally varying dendritic morphologies and dispersed oxide inclusions. The texture spatially varies across the part, and this variation is correlated to the local thermal gradient induced by the building strategy and processing conditions used during the manufacturing of the thick-walled part.
引用
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页数:13
相关论文
共 43 条
[1]  
[Anonymous], 2015, Standard Classification of Coals by Rank, DOI DOI 10.1520/D0388-15.2
[2]  
AWS, 2017, SPEC BAR STAINL STEE
[3]   Texture Analysis with MTEX - Free and Open Source Software Toolbox [J].
Bachmann, F. ;
Hielscher, R. ;
Schaeben, H. .
TEXTURE AND ANISOTROPY OF POLYCRYSTALS III, 2010, 160 :63-+
[4]  
Belotti L.P., 2021, METHOD EXTRACT UNPUB
[5]  
Brooks J.A., 1993, ASM HDB VOLUME 6 WEL, V6, P1299
[6]   MIST: Accurate and Scalable Microscopy Image Stitching Tool with Stage Modeling and Error Minimization [J].
Chalfoun, Joe ;
Majurski, Michael ;
Blattner, Tim ;
Bhadriraju, Kiran ;
Keyrouz, Walid ;
Bajcsy, Peter ;
Brady, Mary .
SCIENTIFIC REPORTS, 2017, 7
[7]   Microstructure and mechanical properties of the austenitic stainless steel 316L fabricated by gas metal arc additive manufacturing [J].
Chen, Xiaohui ;
Li, Jia ;
Cheng, Xu ;
He, Bei ;
Wang, Huaming ;
Huang, Zheng .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2017, 703 :567-577
[8]   Microstructural Control of Additively Manufactured Metallic Materials [J].
Collins, P. C. ;
Brice, D. A. ;
Samimi, P. ;
Ghamarian, I. ;
Fraser, H. L. .
ANNUAL REVIEW OF MATERIALS RESEARCH, VOL 46, 2016, 46 :63-91
[9]   Invited review article: Strategies and processes for high quality wire arc additive manufacturing [J].
Cunningham, C. R. ;
Flynn, J. M. ;
Shokrani, A. ;
Dhokia, V. ;
Newman, S. T. .
ADDITIVE MANUFACTURING, 2018, 22 :672-686
[10]  
Cunningham C.R., 2019, SOLID FREEFORM FABRI, P426, DOI [10.26153/tsw/17282, DOI 10.26153/TSW/17282]