Mechanism of Grain Boundary Angle on Solidification Cracking in Directed Energy Deposition Hastelloy X Superalloys

27 Pages Posted: 24 Jan 2024

See all articles by Yashan Zhang

Yashan Zhang

Northwestern Polytechnic University (NPU) - State Key Laboratory of Solidification Processing

Bojing Guo

Northwestern Polytechnic University (NPU)

Meirong Jiang

Northwestern Polytechnic University (NPU)

Junjie Li

Northwestern Polytechnic University (NPU); Zhengzhou University

Zhijun Wang

Northwestern Polytechnic University (NPU)

Lei Wang

Northwestern Polytechnic University (NPU) - State Key Laboratory of Solidification Processing

Jincheng Wang

Northwestern Polytechnic University (NPU) - State Key Laboratory of Solidification Processing

Abstract

Solidification cracking occurs only when the grain boundary (GB) angle (θ) exceeds a critical value. This value, known as the critical cracked GB angle (θ*), can be predicted from the grain coalescence theory based on GB-angle-dependent GB energy. However, the calculated value (θ*c) is always less than the measured value in experiments (θ*e), which is also confirmed in our directed energy deposition Hastelloy X superalloys. In addition to GB energy, there are evidences showing that GB angle can affect cracking by changing dendrite spacings. We show by experiments and phase-field modeling that, same as GB energy, the dendrite spacings at GBs increase with GB angle, but its effect on solidification cracking sensitivity (SCS) is opposite to GB energy. Depending on their relative contributions, three ranges can be identified. In the first range of θ<θ*c, both dendrite spacings and GB energy have negligible effects on dendrite coalescence, compared to the case inside a grain. In the second range of θ*c<θ<θ*e, dendrite spacings counteract the effect of high GB energy on SCS. It is exactly this effect that induces the gap in θ* between theory and experiments. In the third range of θ>θ*e, GB energy plays a dominant role and leads to severe solidification cracking. After including the effect of dendrite spacings on SCS, we predict θ*=15° in directed energy deposition Hastelloy X superalloys, close to the experimental value of 18°. These new findings provide new insights for suppressing cracking by controlling the dendrite spacings near GBs.

Keywords: Solidification cracking Grain boundary angle Dendrite spacings Phase field Critical cracked grain boundary angle

Suggested Citation

Zhang, Yashan and Guo, Bojing and Jiang, Meirong and Li, Junjie and Wang, Zhijun and Wang, Lei and Wang, Jincheng, Mechanism of Grain Boundary Angle on Solidification Cracking in Directed Energy Deposition Hastelloy X Superalloys. Available at SSRN: https://ssrn.com/abstract=4704351 or http://dx.doi.org/10.2139/ssrn.4704351

Yashan Zhang

Northwestern Polytechnic University (NPU) - State Key Laboratory of Solidification Processing ( email )

127 YouYi Load
XiAn, 710072
China

Bojing Guo

Northwestern Polytechnic University (NPU) ( email )

127# YouYi Load
Xi'an, 710072
China

Meirong Jiang

Northwestern Polytechnic University (NPU) ( email )

127# YouYi Load
Xi'an, 710072
China

Junjie Li

Northwestern Polytechnic University (NPU) ( email )

Zhengzhou University ( email )

100 Science Avenue
Zhengzhou, CO 450001
China

Zhijun Wang

Northwestern Polytechnic University (NPU) ( email )

127# YouYi Load
Xi'an, 710072
China

Lei Wang

Northwestern Polytechnic University (NPU) - State Key Laboratory of Solidification Processing ( email )

Jincheng Wang (Contact Author)

Northwestern Polytechnic University (NPU) - State Key Laboratory of Solidification Processing ( email )

127 YouYi Load
XiAn, Shaanxi 710072
China

Do you have a job opening that you would like to promote on SSRN?

Paper statistics

Downloads
48
Abstract Views
194
PlumX Metrics