4.7 Article

Microstructure and mechanical behavior of direct metal laser sintered Inconel alloy 718

期刊

MATERIALS CHARACTERIZATION
卷 113, 期 -, 页码 1-9

出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.matchar.2016.01.003

关键词

Direct metal laser sintering; Inconel 718; Microstructure; Texture; Anisotropy

资金

  1. Turbocam Energy Solutions
  2. New Hampshire Innovation Research Center [13R217]

向作者/读者索取更多资源

In this paper, we investigate microstructure and quasi-static mechanical behavior of the direct metal laser sintered Inconel 718 superalloy as a function of build direction (BD). The printed material was further processed by annealing and double-aging, hot isostatic pressing (HIP), and machining. We characterize porosity fraction and distribution using micro X-ray computed tomography (mu XCT), grain structure and crystallographic texture using electron backscattered diffraction (EBSD), and mechanical response in quasi-static tension and compression using standard mechanical testing at room temperature. Analysis of the mu XCT imaging shows that majority of porosity develops in the outer layer of the printed material. However, porosity inside the material is also present. The EBSD measurements reveal formation of columnar grains, which favor < 001 > fiber texture components along the BD. These measurements also show evidence of coarse-grained microstructure present in the samples treated by HIP. Finally, analysis of grain boundaries reveal that HIP results in a large number of annealing twins compared to that in samples that underwent annealing and double-aging. The yield strength varies with the testing direction by approximately 7%, which is governed by a combination of grain morphology and crystallographic texture. In particular, we determine tension-compression asymmetry in the yield stress as well as anisotropy of the material flow during compression. We find that HIP lowers yield stress but improves ductility relative to the annealed and aged material. These results are discussed and critically compared with the data reported for wrought material in the same condition. (C) 2016 Elsevier Inc. All rights reserved.

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