Application of wire arc additive manufacturing for repair of Monel alloy components

被引:10
作者
Marenych, O. O. [1 ]
Kostryzhev, A. G. [1 ]
Pan, Z. [2 ]
Li, H. [2 ]
van Duin, S. [3 ]
机构
[1] Univ Queensland, Ctr Microscopy & Microanal, St Lucia, Qld, Australia
[2] Univ Wollongong, Sch Mech Mat Mechatron & Biomed Engn, Wollongong, NSW, Australia
[3] Def Mat Technol Ctr, Hawthorn, Vic 3122, Australia
基金
澳大利亚研究理事会;
关键词
Additive manufacturing; Ni-base alloys; microstructure-properties relationship; MICROSTRUCTURE; DEPOSITION;
D O I
10.1080/14484846.2021.1981528
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Monet alloys containing 63Ni-30Cu-2.0Mn-2.0Fe-AlTiC (wt. %) are often used for manufacturing of machine parts in marine, chemical, and oil extraction industries. Despite excellent corrosion resistance and mechanical properties, Monet components may fail via wear, which is enhanced in corrosive environment. Heavy components working under high loads may experience galling, which is welding followed by tearing of large pieces of material off the contacting surfaces. In addition to high cost of Ni-based alloys, heavy parts of machinery may not be easily replaced, and, thus, require repair being in partial assembly. In this paper, we introduce wire arc additive manufacturing (WAAM) technology as a repair method for Monel alloy components. The effect of post-weld heat treatment on microstructure and hardness of both the component body and the repair layer is investigated and discussed.
引用
收藏
页码:609 / 617
页数:9
相关论文
共 22 条
[1]   Mechanical Properties of INCONEL 718 Parts Manufactured by Shaped Metal Deposition (SMD) [J].
Baufeld, Bernd .
JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2012, 21 (07) :1416-1421
[2]   Effect of arc mode in cold metal transfer process on porosity of additively manufactured Al-6.3% Cu alloy [J].
Cong, Baoqiang ;
Ding, Jialuo ;
Williams, Stewart .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2015, 76 (9-12) :1593-1606
[3]  
Davis J.R., 2000, Superalloys, ASM Spe. Handb.- Nickel, Cobalt Their Alloys, P349, DOI 10.1361/ncta2000p003
[4]   Fabricating Superior NiAl Bronze Components through Wire Arc Additive Manufacturing [J].
Ding, Donghong ;
Pan, Zengxi ;
van Duin, Stephen ;
Li, Huijun ;
Shen, Chen .
Materials, 2016, 9 (08)
[5]   Wire-feed additive manufacturing of metal components: technologies, developments and future interests [J].
Ding, Donghong ;
Pan, Zengxi ;
Cuiuri, Dominic ;
Li, Huijun .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2015, 81 (1-4) :465-481
[6]   A practical path planning methodology for wire and arc additive manufacturing of thin-walled structures [J].
Ding, Donghong ;
Pan, Zengxi ;
Cuiuri, Dominic ;
Li, Huijun .
ROBOTICS AND COMPUTER-INTEGRATED MANUFACTURING, 2015, 34 :8-19
[7]  
Gibson I, 2010, ADDITIVE MANUFACTURING TECHNOLOGIES: RAPID PROTOTYPING TO DIRECT DIGITAL MANUFACTURING, P1, DOI 10.1007/978-1-4419-1120-9_1
[8]   Laser additive manufacturing of metallic components: materials, processes and mechanisms [J].
Gu, D. D. ;
Meiners, W. ;
Wissenbach, K. ;
Poprawe, R. .
INTERNATIONAL MATERIALS REVIEWS, 2012, 57 (03) :133-164
[9]   Wire and arc additive manufactured steel: Tensile and wear properties [J].
Haden, C., V ;
Zeng, G. ;
Carter, F. M., III ;
Ruhl, C. ;
Krick, B. A. ;
Harlow, D. G. .
ADDITIVE MANUFACTURING, 2017, 16 :115-123
[10]   Temperature and composition profile during double-track laser cladding of H13 tool steel [J].
He, X. ;
Yu, G. ;
Mazumder, J. .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2010, 43 (01)