Effects of Grain Boundary Engineering on the Microstructure and Corrosion Fatigue Properties of 316L Austenitic Stainless Steel
Grain boundary engineering (GBE) treatment was performed through thermomechanical processing (TMP) to optimize the grain boundary character distribution (GBCD) of 316L austenitic stainless steel. The effects of TMP on the GBCD and corrosion fatigue properties in high-temperature and high-pressure wa...
| Published in: | Frontiers in Materials |
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| Main Authors: | , , , |
| Format: | Article |
| Language: | English |
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Frontiers Media S.A.
2022-06-01
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| Online Access: | https://www.frontiersin.org/articles/10.3389/fmats.2022.931848/full |
| _version_ | 1857064796104425472 |
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| author | Mingxian Zhang Mingxian Zhang Chenxin Zhang Huanchun Wu Bin Yang |
| author_facet | Mingxian Zhang Mingxian Zhang Chenxin Zhang Huanchun Wu Bin Yang |
| author_sort | Mingxian Zhang |
| collection | DOAJ |
| container_title | Frontiers in Materials |
| description | Grain boundary engineering (GBE) treatment was performed through thermomechanical processing (TMP) to optimize the grain boundary character distribution (GBCD) of 316L austenitic stainless steel. The effects of TMP on the GBCD and corrosion fatigue properties in high-temperature and high-pressure water were investigated. The results indicated that a high fraction (about 74%) of special boundaries as well as the interrupted network of random high-angle grain boundaries were obtained through 5% strain followed by annealing at 1,273 K for 90 min. The Σ9 and Σ27 boundaries were generated by the reaction of special boundaries. The highest corrosion fatigue life for 3,187 cycles was obtained when the TMP parameters of the 316L ASS were of 5% strain, annealing temperature of 1,273 K, and annealing time of 45 min. The low-energy special boundaries had strong intergranular corrosion resistance, but the strength of these boundaries was not enough to resist the propagation of transgranular fatigue cracks. |
| format | Article |
| id | doaj-art-e5a77403c46d4d929ec4959e2a63e4e6 |
| institution | Directory of Open Access Journals |
| issn | 2296-8016 |
| language | English |
| publishDate | 2022-06-01 |
| publisher | Frontiers Media S.A. |
| record_format | Article |
| spelling | doaj-art-e5a77403c46d4d929ec4959e2a63e4e62025-08-19T19:27:45ZengFrontiers Media S.A.Frontiers in Materials2296-80162022-06-01910.3389/fmats.2022.931848931848Effects of Grain Boundary Engineering on the Microstructure and Corrosion Fatigue Properties of 316L Austenitic Stainless SteelMingxian Zhang0Mingxian Zhang1Chenxin Zhang2Huanchun Wu3Bin Yang4School of Physics and Materials Science, Nanchang University, Nanchang, ChinaInternational Institute for Materials Innovation, Nanchang University, Nanchang, ChinaChina Nerin Engineering Company Limited, Nanchang, ChinaPlant Life Management Center, Suzhou Nuclear Power Research Institute, Suzhou, ChinaCollaborative Innovation Center of Steel Technology, University of Science and Technology Beijing, Beijing, ChinaGrain boundary engineering (GBE) treatment was performed through thermomechanical processing (TMP) to optimize the grain boundary character distribution (GBCD) of 316L austenitic stainless steel. The effects of TMP on the GBCD and corrosion fatigue properties in high-temperature and high-pressure water were investigated. The results indicated that a high fraction (about 74%) of special boundaries as well as the interrupted network of random high-angle grain boundaries were obtained through 5% strain followed by annealing at 1,273 K for 90 min. The Σ9 and Σ27 boundaries were generated by the reaction of special boundaries. The highest corrosion fatigue life for 3,187 cycles was obtained when the TMP parameters of the 316L ASS were of 5% strain, annealing temperature of 1,273 K, and annealing time of 45 min. The low-energy special boundaries had strong intergranular corrosion resistance, but the strength of these boundaries was not enough to resist the propagation of transgranular fatigue cracks.https://www.frontiersin.org/articles/10.3389/fmats.2022.931848/fullgrain boundary engineeringthermomechanical processinggrain boundary character distributionspecial boundariescorrosion fatigue |
| spellingShingle | Mingxian Zhang Mingxian Zhang Chenxin Zhang Huanchun Wu Bin Yang Effects of Grain Boundary Engineering on the Microstructure and Corrosion Fatigue Properties of 316L Austenitic Stainless Steel grain boundary engineering thermomechanical processing grain boundary character distribution special boundaries corrosion fatigue |
| title | Effects of Grain Boundary Engineering on the Microstructure and Corrosion Fatigue Properties of 316L Austenitic Stainless Steel |
| title_full | Effects of Grain Boundary Engineering on the Microstructure and Corrosion Fatigue Properties of 316L Austenitic Stainless Steel |
| title_fullStr | Effects of Grain Boundary Engineering on the Microstructure and Corrosion Fatigue Properties of 316L Austenitic Stainless Steel |
| title_full_unstemmed | Effects of Grain Boundary Engineering on the Microstructure and Corrosion Fatigue Properties of 316L Austenitic Stainless Steel |
| title_short | Effects of Grain Boundary Engineering on the Microstructure and Corrosion Fatigue Properties of 316L Austenitic Stainless Steel |
| title_sort | effects of grain boundary engineering on the microstructure and corrosion fatigue properties of 316l austenitic stainless steel |
| topic | grain boundary engineering thermomechanical processing grain boundary character distribution special boundaries corrosion fatigue |
| url | https://www.frontiersin.org/articles/10.3389/fmats.2022.931848/full |
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