Tuning microstructure, transformation behavior, mechanical/functional properties of Ti–V–Al shape memory alloy by doping quaternary rare earth Y

The microstructure features, martensitic transformation behavior and mechanical/functional properties of Ti–V–Al alloy were tailored by changing rare element Y content in the present investigation. The results showed that Y doping resulted in the grain refinement and formation of Y-rich phase mainly...

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Main Authors: Xiaoyang Yi, Kuishan Sun, Haizhen Wang, Yifu Gong, Xianglong Meng, Zhiyong Gao, Hua Zhang, Wei Cai
Format: Article
Language:English
Published: Elsevier 2021-04-01
Series:Progress in Natural Science: Materials International
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1002007121000071
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spelling doaj-b5db81e226944371a7044e559510cf662021-04-14T04:14:55ZengElsevierProgress in Natural Science: Materials International1002-00712021-04-01312296302Tuning microstructure, transformation behavior, mechanical/functional properties of Ti–V–Al shape memory alloy by doping quaternary rare earth YXiaoyang Yi0Kuishan Sun1Haizhen Wang2Yifu Gong3Xianglong Meng4Zhiyong Gao5Hua Zhang6Wei Cai7College of Nuclear Equipment and Nuclear Engineering, Yantai University, Yantai, 264005, ChinaSchool of Materials Science and Engineering, Harbin Institute of Technology, Harbin, 150001, ChinaCollege of Nuclear Equipment and Nuclear Engineering, Yantai University, Yantai, 264005, ChinaSchool of Materials Science and Engineering, Harbin Institute of Technology, Harbin, 150001, ChinaSchool of Materials Science and Engineering, Harbin Institute of Technology, Harbin, 150001, ChinaSchool of Materials Science and Engineering, Harbin Institute of Technology, Harbin, 150001, China; Corresponding author.Institute for Advanced Studies in Precision Materials, Yantai University, Yantai, 264005, ChinaSchool of Materials Science and Engineering, Harbin Institute of Technology, Harbin, 150001, ChinaThe microstructure features, martensitic transformation behavior and mechanical/functional properties of Ti–V–Al alloy were tailored by changing rare element Y content in the present investigation. The results showed that Y doping resulted in the grain refinement and formation of Y-rich phase mainly distributing along grain boundary in Ti–V–Al alloys. The martensitic transformation temperatures of Ti–V–Al alloys slightly increased due to the variation of matrix composition induced by the presence of Y-rich phase. The mechanical and functional properties of Ti–V–Al alloys doped moderate Y addition were significantly improved, which can be ascribed to grain refinement, solution strengthening and precipitation strengthening. The 1.0 ​at.%Y-doped Ti–V–Al alloy exhibited the highest ultimate tensile stress of 912 ​MPa and largest elongation of 17.68%. In addition, it was found that the maximum recoverable strain of 5.42% can be obtained in Ti–V–Al alloy with adding 1.0 ​at.%Y, under the pre-strain of 6% condition, which is enhanced by approximate 0.6% than that of Ti–V–Al alloy without Y addition.http://www.sciencedirect.com/science/article/pii/S1002007121000071Light weight shape memory alloyTi–V–Al alloyMicrostructurePhase transformationMechanical properties
collection DOAJ
language English
format Article
sources DOAJ
author Xiaoyang Yi
Kuishan Sun
Haizhen Wang
Yifu Gong
Xianglong Meng
Zhiyong Gao
Hua Zhang
Wei Cai
spellingShingle Xiaoyang Yi
Kuishan Sun
Haizhen Wang
Yifu Gong
Xianglong Meng
Zhiyong Gao
Hua Zhang
Wei Cai
Tuning microstructure, transformation behavior, mechanical/functional properties of Ti–V–Al shape memory alloy by doping quaternary rare earth Y
Progress in Natural Science: Materials International
Light weight shape memory alloy
Ti–V–Al alloy
Microstructure
Phase transformation
Mechanical properties
author_facet Xiaoyang Yi
Kuishan Sun
Haizhen Wang
Yifu Gong
Xianglong Meng
Zhiyong Gao
Hua Zhang
Wei Cai
author_sort Xiaoyang Yi
title Tuning microstructure, transformation behavior, mechanical/functional properties of Ti–V–Al shape memory alloy by doping quaternary rare earth Y
title_short Tuning microstructure, transformation behavior, mechanical/functional properties of Ti–V–Al shape memory alloy by doping quaternary rare earth Y
title_full Tuning microstructure, transformation behavior, mechanical/functional properties of Ti–V–Al shape memory alloy by doping quaternary rare earth Y
title_fullStr Tuning microstructure, transformation behavior, mechanical/functional properties of Ti–V–Al shape memory alloy by doping quaternary rare earth Y
title_full_unstemmed Tuning microstructure, transformation behavior, mechanical/functional properties of Ti–V–Al shape memory alloy by doping quaternary rare earth Y
title_sort tuning microstructure, transformation behavior, mechanical/functional properties of ti–v–al shape memory alloy by doping quaternary rare earth y
publisher Elsevier
series Progress in Natural Science: Materials International
issn 1002-0071
publishDate 2021-04-01
description The microstructure features, martensitic transformation behavior and mechanical/functional properties of Ti–V–Al alloy were tailored by changing rare element Y content in the present investigation. The results showed that Y doping resulted in the grain refinement and formation of Y-rich phase mainly distributing along grain boundary in Ti–V–Al alloys. The martensitic transformation temperatures of Ti–V–Al alloys slightly increased due to the variation of matrix composition induced by the presence of Y-rich phase. The mechanical and functional properties of Ti–V–Al alloys doped moderate Y addition were significantly improved, which can be ascribed to grain refinement, solution strengthening and precipitation strengthening. The 1.0 ​at.%Y-doped Ti–V–Al alloy exhibited the highest ultimate tensile stress of 912 ​MPa and largest elongation of 17.68%. In addition, it was found that the maximum recoverable strain of 5.42% can be obtained in Ti–V–Al alloy with adding 1.0 ​at.%Y, under the pre-strain of 6% condition, which is enhanced by approximate 0.6% than that of Ti–V–Al alloy without Y addition.
topic Light weight shape memory alloy
Ti–V–Al alloy
Microstructure
Phase transformation
Mechanical properties
url http://www.sciencedirect.com/science/article/pii/S1002007121000071
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