Microstructure evolution of Inconel 738 fabricated by pulsed laser powder bed fusion

被引:45
作者
Muniz-Lerma, Jose Alberto [1 ]
Tian, Yuan [1 ]
Wang, Xianglong [1 ]
Gauvin, Raynald [1 ]
Brochu, Mathieu [1 ]
机构
[1] McGill Univ, Dept Min & Mat Engn, Montreal, PQ H3A 0C5, Canada
关键词
Pulse laser powder bed fusion; Additive manufacturing; Nickel-based superalloy; Microstructure evolution; HEAT-AFFECTED ZONE; PERCENT BORON MODIFICATION; MECHANICAL-PROPERTIES; ALLOY; LIQUATION; GROWTH; MODEL;
D O I
10.1007/s40964-018-0062-2
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
High-density crack-free Inconel 738 samples were manufactured into both thin-walled and bulk samples using pulsed laser powder bed fusion (P-LPBF). As-built thin-walled samples presented a dendritic microstructure with primary dendrite arm spacing (PDAS) of 1.02 +/- 0.21 mu m. This PDAS was consistent along the length of the as-built wall, which led to a homogeneously distributed hardness across the deposit. Energy dispersive spectroscopy (EDS) maps showed near-equilibrium elemental segregation due to limited solute trapping occurring during rapid solidification. In the bulk of the as-built samples, a PDAS of 0.69 +/- 0.06 mu m was obtained. The smaller dendrite arm spacing which developed in the bulk was a result of the higher cooling rates obtained in this volume of sample. The EDS maps of the bulk samples presented comparative elemental constituents of the different phases as seen in the thin-walled sample. The Electron Backscattered Diffraction (EBSD) map of the bulk sample presented columnar grains with strong texture along the (100) crystallographic orientation planes. After annealing and aging treatment, cuboidal primary gamma MODIFIER LETTER PRIME precipitates and secondary gamma MODIFIER LETTER PRIME precipitates were observed. No strain-age cracks were found after the heat treatment. The EBSD map displayed comparative results to the as-built condition; with columnar grains with preferred orientation towards (100) planes.
引用
收藏
页码:97 / 107
页数:11
相关论文
共 44 条
[1]  
[Anonymous], 2013, P RAPIDTECH 2013
[2]  
[Anonymous], 1981, INCO TECHNICAL DATAZ
[3]   SOLUTE TRAPPING - COMPARISON OF THEORY WITH EXPERIMENT [J].
AZIZ, MJ ;
TSAO, JY ;
THOMPSON, MO ;
PEERCY, PS ;
WHITE, CW .
PHYSICAL REVIEW LETTERS, 1986, 56 (23) :2489-2492
[4]   CONTINUOUS GROWTH-MODEL FOR INTERFACE MOTION DURING ALLOY SOLIDIFICATION [J].
AZIZ, MJ ;
KAPLAN, T .
ACTA METALLURGICA, 1988, 36 (08) :2335-2347
[5]   MODEL FOR SOLUTE REDISTRIBUTION DURING RAPID SOLIDIFICATION [J].
AZIZ, MJ .
JOURNAL OF APPLIED PHYSICS, 1982, 53 (02) :1158-1168
[6]   SOLUTE TRAPPING BY RAPID SOLIDIFICATION [J].
BAKER, JC ;
CAHN, JW .
ACTA METALLURGICA, 1969, 17 (05) :575-&
[7]   Tensile strengthening in the nickel-base superalloy IN738LC [J].
Balikci, E ;
Mirshams, RA ;
Raman, A .
JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2000, 9 (03) :324-329
[8]   MICROSEGREGATION IN RAPIDLY SOLIDIFIED AG-15WT-PERCENT-CU ALLOYS [J].
BOETTINGER, WJ ;
BENDERSKY, LA ;
CORIELL, SR ;
SCHAEFER, RJ ;
BIANCANIELLO, FS .
JOURNAL OF CRYSTAL GROWTH, 1987, 80 (01) :17-25
[9]  
Carter LN, 2012, SUPERALLOYS 2012, P577
[10]   Microstructure and mechanical properties of Al10SiMg fabricated by pulsed laser powder bed fusion [J].
Chou, R. ;
Ghosh, A. ;
Chou, S. C. ;
Paliwal, M. ;
Brochu, M. .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2017, 689 :53-62