Projects per year
Abstract
The effects of welding and post-weld heat treatment (PWHT) on nanoscale co-precipitation, grain structure, and mechanical properties of an ultra-high strength steel were studied through a combination of atom probe tomography (APT) and mechanical tests. Our results indicate that the welding process dissolves all pre-existing nanoparticles and causes grain coarsening in the fusion zone, resulting in a soft and ductile weld without any cracks in the as-welded condition. A 550 °C PWHT induces fine-scale re-precipitation of NiAl and Cu co-precipitates with high number densities and ultra-fine sizes, leading to a large recovery of strength but a loss of ductility with intergranular failure, whereas a 600 °C PWHT gives rise to coarse-scale re-precipitation of nanoparticles together with the formation of a small amount of reverted austenite, resulting in a great recovery in both strength and ductility. Our analysis indicates that the degree of strength recovery is dependent mainly upon the re-precipitation microstructure of nanoparticles, together with grain size and reversion of austenite, while the ductility recovery is sensitive to the grain-boundary structure. APT reveals that the grain-boundary segregation of Mn and P may be the main reason for the 550 °C embrittlement, and the enhanced ductility at 600 °C is ascribed to a possible reduction of the segregation and reversion of austenite.
| Original language | English |
|---|---|
| Pages (from-to) | 216-227 |
| Journal | Acta Materialia |
| Volume | 120 |
| Online published | 1 Sept 2016 |
| DOIs | |
| Publication status | Published - Nov 2016 |
Research Keywords
- Mechanical property
- Precipitation
- Structure-property relationship
- Ultra-high strength steel
- Welding
RGC Funding Information
- RGC-funded
Fingerprint
Dive into the research topics of 'Effects of welding and post-weld heat treatments on nanoscale precipitation and mechanical properties of an ultra-high strength steel hardened by NiAl and Cu nanoparticles'. Together they form a unique fingerprint.Projects
- 2 Finished
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GRF: Nano-mechanical Properties and Dislocation Interactions of Nanoscale Cu Particles in High Strength Fe-based Alloys
LIU, C. T. (Principal Investigator / Project Coordinator) & YANG, Y. (Co-Investigator)
1/01/16 → 27/12/19
Project: Research
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CRF: Three-dimensional (3D) Atom Probe Facility for Characterization of Advanced Materials Research at Atomic- and Nano-scales
LIU, C. T. (Principal Investigator / Project Coordinator), LU, J. (Co-Principal Investigator), WANG, X.-L. (Co-Principal Investigator), WOO, C. H. (Co-Principal Investigator), YANG, Y. (Co-Principal Investigator), HUANG, M. (Co-Investigator), Li, Q. (Co-Investigator), Ngan, A. H. W. (Co-Investigator), Shi, S.-Q. (Co-Investigator) & Wang, N. (Co-Investigator)
1/05/15 → 26/10/18
Project: Research
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