Cargando…
The Effect of W Content on the Microstructure, Mechanics and Electrical Performance of an FeCrCo Alloy
In this paper, FeCrCoW alloys with different W contents (0.4, 2.1 and 3.4 at%) are designed and studied in order to overcome the existing shortcomings of resistance materials. These resistance materials have high resistivity and a low temperature coefficient of resistivity. It is observed that the a...
Autores principales: | , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2023
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10304052/ https://www.ncbi.nlm.nih.gov/pubmed/37374503 http://dx.doi.org/10.3390/ma16124319 |
_version_ | 1785065417237069824 |
---|---|
author | Wang, Huiqi Zhang, Hui Liu, Mangxian Liu, Jianqun Yan, Zhipeng Zhang, Changming Li, Yapeng Feng, Junjun |
author_facet | Wang, Huiqi Zhang, Hui Liu, Mangxian Liu, Jianqun Yan, Zhipeng Zhang, Changming Li, Yapeng Feng, Junjun |
author_sort | Wang, Huiqi |
collection | PubMed |
description | In this paper, FeCrCoW alloys with different W contents (0.4, 2.1 and 3.4 at%) are designed and studied in order to overcome the existing shortcomings of resistance materials. These resistance materials have high resistivity and a low temperature coefficient of resistivity. It is observed that the addition of W has a remarkable effect on the phase structure of the alloy. In particular, when the W content is 3.4 at%, the single BCC phase of the alloy can be transformed into the BCC and FCC phase. Meanwhile, when analyzed by transmission electron microscopy, there are stacking faults and martensite in FeCrCoW alloy with W content of 3.4 at%. These features are related to excessive W content. In addition, the strength of the alloy can be improved, and the ultimate tensile strength and yield strength are both very high, which are considered as grain-boundary strengthening and solid solution strengthening, caused by the addition of W. The electrical resistivity of the FeCrCoW alloys decreases when the content of W is more than 2.1 at%. The maximum resistivity of the alloy is 170 ± 1.5 μΩ·cm. Moreover, the unique properties of the transition metal allow the alloy to have a low temperature coefficient of resistivity in the temperature range of 298~393 K. The temperature coefficient of resistivity values of the W0.4, W2.1 and W3.4 alloys are −0.0073, −0.0052 and −0.0051 ppm/K. Therefore, this work provides a vision for resistance alloys, which can achieve highly stable resistivity and high strengths in a certain temperature range. |
format | Online Article Text |
id | pubmed-10304052 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2023 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-103040522023-06-29 The Effect of W Content on the Microstructure, Mechanics and Electrical Performance of an FeCrCo Alloy Wang, Huiqi Zhang, Hui Liu, Mangxian Liu, Jianqun Yan, Zhipeng Zhang, Changming Li, Yapeng Feng, Junjun Materials (Basel) Article In this paper, FeCrCoW alloys with different W contents (0.4, 2.1 and 3.4 at%) are designed and studied in order to overcome the existing shortcomings of resistance materials. These resistance materials have high resistivity and a low temperature coefficient of resistivity. It is observed that the addition of W has a remarkable effect on the phase structure of the alloy. In particular, when the W content is 3.4 at%, the single BCC phase of the alloy can be transformed into the BCC and FCC phase. Meanwhile, when analyzed by transmission electron microscopy, there are stacking faults and martensite in FeCrCoW alloy with W content of 3.4 at%. These features are related to excessive W content. In addition, the strength of the alloy can be improved, and the ultimate tensile strength and yield strength are both very high, which are considered as grain-boundary strengthening and solid solution strengthening, caused by the addition of W. The electrical resistivity of the FeCrCoW alloys decreases when the content of W is more than 2.1 at%. The maximum resistivity of the alloy is 170 ± 1.5 μΩ·cm. Moreover, the unique properties of the transition metal allow the alloy to have a low temperature coefficient of resistivity in the temperature range of 298~393 K. The temperature coefficient of resistivity values of the W0.4, W2.1 and W3.4 alloys are −0.0073, −0.0052 and −0.0051 ppm/K. Therefore, this work provides a vision for resistance alloys, which can achieve highly stable resistivity and high strengths in a certain temperature range. MDPI 2023-06-11 /pmc/articles/PMC10304052/ /pubmed/37374503 http://dx.doi.org/10.3390/ma16124319 Text en © 2023 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 Wang, Huiqi Zhang, Hui Liu, Mangxian Liu, Jianqun Yan, Zhipeng Zhang, Changming Li, Yapeng Feng, Junjun The Effect of W Content on the Microstructure, Mechanics and Electrical Performance of an FeCrCo Alloy |
title | The Effect of W Content on the Microstructure, Mechanics and Electrical Performance of an FeCrCo Alloy |
title_full | The Effect of W Content on the Microstructure, Mechanics and Electrical Performance of an FeCrCo Alloy |
title_fullStr | The Effect of W Content on the Microstructure, Mechanics and Electrical Performance of an FeCrCo Alloy |
title_full_unstemmed | The Effect of W Content on the Microstructure, Mechanics and Electrical Performance of an FeCrCo Alloy |
title_short | The Effect of W Content on the Microstructure, Mechanics and Electrical Performance of an FeCrCo Alloy |
title_sort | effect of w content on the microstructure, mechanics and electrical performance of an fecrco alloy |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10304052/ https://www.ncbi.nlm.nih.gov/pubmed/37374503 http://dx.doi.org/10.3390/ma16124319 |
work_keys_str_mv | AT wanghuiqi theeffectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT zhanghui theeffectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT liumangxian theeffectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT liujianqun theeffectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT yanzhipeng theeffectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT zhangchangming theeffectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT liyapeng theeffectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT fengjunjun theeffectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT wanghuiqi effectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT zhanghui effectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT liumangxian effectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT liujianqun effectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT yanzhipeng effectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT zhangchangming effectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT liyapeng effectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy AT fengjunjun effectofwcontentonthemicrostructuremechanicsandelectricalperformanceofanfecrcoalloy |