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Strengthening and deformation mechanism of selective laser-melted high-concentration nitrogen solute α-Ti materials with heterogeneous microstructures via heat treatment
- Source :
- Materials Science and Engineering: A. 826:141935
- Publication Year :
- 2021
- Publisher :
- Elsevier BV, 2021.
-
Abstract
- Light elements such as oxygen (O) and nitrogen (N) significantly impact the microstructure and mechanical properties of Ti-based materials through solid solution strengthening. The microstructures of Ti-based materials processed via selective laser melting (SLM) have also been observed to contain a martensitic phase that improves the tensile strength. However, this improvement is achieved at the cost of reduced ductility. This study considered the use of post-heat treatment N dissolution to enhance the ductility of SLM-processed α-Ti materials. Tensile testing of the as-fabricated SLM Ti-(N) revealed a significantly increased strength of ~1200 MPa and a low ductility of 5% for N content of 0.5 wt%. However, the quenched samples exhibited increased ductility by up to 20%, with the microstructure, including primary α (αp) and transformed β structures. Further examination via electron probe micro-analysis (EPMA), transmission electron microscopy (TEM), in-situ high-temperature SEM observation and in-situ EBSD observation during tensile testing revealed that the enhancement in ductility of the quenched SLM-processed Ti-(N) samples was significantly due to alteration of the grain morphology, dislocations and N distribution. The findings of this study further clarify the microstructural evolution and deformation response of SLM-processed Ti-(N) materials under water quenching.
- Subjects :
- Quenching
Materials science
Mechanical Engineering
Condensed Matter Physics
Microstructure
Solid solution strengthening
Deformation mechanism
Mechanics of Materials
Ultimate tensile strength
General Materials Science
Composite material
Ductility
Tensile testing
Electron backscatter diffraction
Subjects
Details
- ISSN :
- 09215093
- Volume :
- 826
- Database :
- OpenAIRE
- Journal :
- Materials Science and Engineering: A
- Accession number :
- edsair.doi...........8acce13a242eafcb6056d63481e1ba7b
- Full Text :
- https://doi.org/10.1016/j.msea.2021.141935