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Enhanced Magnetostrain in a <0 0 1>(A)-Textured Ni(44.5)Co(4.9)Mn(37.5)In(13.1) Alloy through Superelastic Training

Large magnetostrain can be demonstrated in Ni-Mn-X (X = In, Sn, Sb) meta-magnetic shape memory alloys by resuming the predeformed martensite through magnetic-field-induced reverse martensitic transformation. However, owing to the constraint from the self-accommodated microstructure and randomly dist...

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Autores principales: Guo, Lanyu, Li, Zongbin, Chen, Jiaxing, Yang, Bo, Yan, Haile, Zhao, Xiang, Esling, Claude, Zuo, Liang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8953679/
https://www.ncbi.nlm.nih.gov/pubmed/35329524
http://dx.doi.org/10.3390/ma15062072
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author Guo, Lanyu
Li, Zongbin
Chen, Jiaxing
Yang, Bo
Yan, Haile
Zhao, Xiang
Esling, Claude
Zuo, Liang
author_facet Guo, Lanyu
Li, Zongbin
Chen, Jiaxing
Yang, Bo
Yan, Haile
Zhao, Xiang
Esling, Claude
Zuo, Liang
author_sort Guo, Lanyu
collection PubMed
description Large magnetostrain can be demonstrated in Ni-Mn-X (X = In, Sn, Sb) meta-magnetic shape memory alloys by resuming the predeformed martensite through magnetic-field-induced reverse martensitic transformation. However, owing to the constraint from the self-accommodated microstructure and randomly distributed crystallographic orientation, spontaneous magnetostrain without predeformation in polycrystalline alloys remains low. Here, by combining microstructure texturing and superelastic training, enhanced spontaneous magnetostrain was achieved in a directionally solidified Ni(44.5)Co(4.9)Mn(37.5)In(13.1) alloy with strong <0 0 1>(A) preferred orientation. After superelastic training through cyclic compressive loading/unloading on the directionally solidified alloy, a large spontaneous magnetostrain of ~0.65% was obtained by applying a magnetic field of 5 T, showing great improvement when compared to that of the untrained situation, i.e., ~0.45%. Such enhanced magnetoresponse is attributed to the internal stress generated through superelastic training, which affects the variant distribution and the resultant output strain in association with the martensitic transformation.
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spelling pubmed-89536792022-03-26 Enhanced Magnetostrain in a <0 0 1>(A)-Textured Ni(44.5)Co(4.9)Mn(37.5)In(13.1) Alloy through Superelastic Training Guo, Lanyu Li, Zongbin Chen, Jiaxing Yang, Bo Yan, Haile Zhao, Xiang Esling, Claude Zuo, Liang Materials (Basel) Article Large magnetostrain can be demonstrated in Ni-Mn-X (X = In, Sn, Sb) meta-magnetic shape memory alloys by resuming the predeformed martensite through magnetic-field-induced reverse martensitic transformation. However, owing to the constraint from the self-accommodated microstructure and randomly distributed crystallographic orientation, spontaneous magnetostrain without predeformation in polycrystalline alloys remains low. Here, by combining microstructure texturing and superelastic training, enhanced spontaneous magnetostrain was achieved in a directionally solidified Ni(44.5)Co(4.9)Mn(37.5)In(13.1) alloy with strong <0 0 1>(A) preferred orientation. After superelastic training through cyclic compressive loading/unloading on the directionally solidified alloy, a large spontaneous magnetostrain of ~0.65% was obtained by applying a magnetic field of 5 T, showing great improvement when compared to that of the untrained situation, i.e., ~0.45%. Such enhanced magnetoresponse is attributed to the internal stress generated through superelastic training, which affects the variant distribution and the resultant output strain in association with the martensitic transformation. MDPI 2022-03-11 /pmc/articles/PMC8953679/ /pubmed/35329524 http://dx.doi.org/10.3390/ma15062072 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Guo, Lanyu
Li, Zongbin
Chen, Jiaxing
Yang, Bo
Yan, Haile
Zhao, Xiang
Esling, Claude
Zuo, Liang
Enhanced Magnetostrain in a <0 0 1>(A)-Textured Ni(44.5)Co(4.9)Mn(37.5)In(13.1) Alloy through Superelastic Training
title Enhanced Magnetostrain in a <0 0 1>(A)-Textured Ni(44.5)Co(4.9)Mn(37.5)In(13.1) Alloy through Superelastic Training
title_full Enhanced Magnetostrain in a <0 0 1>(A)-Textured Ni(44.5)Co(4.9)Mn(37.5)In(13.1) Alloy through Superelastic Training
title_fullStr Enhanced Magnetostrain in a <0 0 1>(A)-Textured Ni(44.5)Co(4.9)Mn(37.5)In(13.1) Alloy through Superelastic Training
title_full_unstemmed Enhanced Magnetostrain in a <0 0 1>(A)-Textured Ni(44.5)Co(4.9)Mn(37.5)In(13.1) Alloy through Superelastic Training
title_short Enhanced Magnetostrain in a <0 0 1>(A)-Textured Ni(44.5)Co(4.9)Mn(37.5)In(13.1) Alloy through Superelastic Training
title_sort enhanced magnetostrain in a <0 0 1>(a)-textured ni(44.5)co(4.9)mn(37.5)in(13.1) alloy through superelastic training
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8953679/
https://www.ncbi.nlm.nih.gov/pubmed/35329524
http://dx.doi.org/10.3390/ma15062072
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