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Nano-Scaled Creep Response of TiAlV Low Density Medium Entropy Alloy at Elevated Temperatures

A low density, medium entropy alloy (LD-MEA) Ti(33)Al(33)V(34) (4.44 g/cm(3)) was successfully developed. The microstructure was found to be composed of a disordered body-centered-cubic (BCC) matrix and minor ordered B2 precipitates based on transmission electron microscopy characterization. Equilib...

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Autores principales: Zhang, Xiangkai, Ye, Hanting, Huang, Jacob C., Liu, Taiyou, Lin, Pinhung, Wu, Yaocheng, Tsai, Mintsang, Liao, Yuchin, Jang, Jason S. C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6982153/
https://www.ncbi.nlm.nih.gov/pubmed/31861768
http://dx.doi.org/10.3390/ma13010036
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author Zhang, Xiangkai
Ye, Hanting
Huang, Jacob C.
Liu, Taiyou
Lin, Pinhung
Wu, Yaocheng
Tsai, Mintsang
Liao, Yuchin
Jang, Jason S. C.
author_facet Zhang, Xiangkai
Ye, Hanting
Huang, Jacob C.
Liu, Taiyou
Lin, Pinhung
Wu, Yaocheng
Tsai, Mintsang
Liao, Yuchin
Jang, Jason S. C.
author_sort Zhang, Xiangkai
collection PubMed
description A low density, medium entropy alloy (LD-MEA) Ti(33)Al(33)V(34) (4.44 g/cm(3)) was successfully developed. The microstructure was found to be composed of a disordered body-centered-cubic (BCC) matrix and minor ordered B2 precipitates based on transmission electron microscopy characterization. Equilibrium and non-equilibrium modeling, simulated using the Calphad approach, were applied to predict the phase constituent. Creep behavior of {110} grains at elevated temperatures was investigated by nanoindentation and the results were compared with Cantor alloy and Ti-6Al-4V alloy. Dislocation creep was found to be the dominant mechanism. The decreasing trend of hardness in {110} grains of BCC TiAlV is different from that in {111} grains of face-centered-cubic (FCC) Cantor alloy due to the different temperature-dependence of Peierls stress in these two lattice structures. The activation energy value of {110} grains was lower than that of {111} grains in FCC Cantor alloy because of the denser atomic stacking in FCC alloys. Compared with conventional Ti-6Al-4V alloy, TiAlV possesses considerably higher hardness and specific strength (63% higher), 83% lower creep displacement at room temperature, and 50% lower creep strain rate over the temperature range from 500 to 600 °C under the similar 1150 MPa stress, indicating a promising substitution for Ti-6Al-4V alloy as structural materials.
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spelling pubmed-69821532020-02-07 Nano-Scaled Creep Response of TiAlV Low Density Medium Entropy Alloy at Elevated Temperatures Zhang, Xiangkai Ye, Hanting Huang, Jacob C. Liu, Taiyou Lin, Pinhung Wu, Yaocheng Tsai, Mintsang Liao, Yuchin Jang, Jason S. C. Materials (Basel) Article A low density, medium entropy alloy (LD-MEA) Ti(33)Al(33)V(34) (4.44 g/cm(3)) was successfully developed. The microstructure was found to be composed of a disordered body-centered-cubic (BCC) matrix and minor ordered B2 precipitates based on transmission electron microscopy characterization. Equilibrium and non-equilibrium modeling, simulated using the Calphad approach, were applied to predict the phase constituent. Creep behavior of {110} grains at elevated temperatures was investigated by nanoindentation and the results were compared with Cantor alloy and Ti-6Al-4V alloy. Dislocation creep was found to be the dominant mechanism. The decreasing trend of hardness in {110} grains of BCC TiAlV is different from that in {111} grains of face-centered-cubic (FCC) Cantor alloy due to the different temperature-dependence of Peierls stress in these two lattice structures. The activation energy value of {110} grains was lower than that of {111} grains in FCC Cantor alloy because of the denser atomic stacking in FCC alloys. Compared with conventional Ti-6Al-4V alloy, TiAlV possesses considerably higher hardness and specific strength (63% higher), 83% lower creep displacement at room temperature, and 50% lower creep strain rate over the temperature range from 500 to 600 °C under the similar 1150 MPa stress, indicating a promising substitution for Ti-6Al-4V alloy as structural materials. MDPI 2019-12-20 /pmc/articles/PMC6982153/ /pubmed/31861768 http://dx.doi.org/10.3390/ma13010036 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhang, Xiangkai
Ye, Hanting
Huang, Jacob C.
Liu, Taiyou
Lin, Pinhung
Wu, Yaocheng
Tsai, Mintsang
Liao, Yuchin
Jang, Jason S. C.
Nano-Scaled Creep Response of TiAlV Low Density Medium Entropy Alloy at Elevated Temperatures
title Nano-Scaled Creep Response of TiAlV Low Density Medium Entropy Alloy at Elevated Temperatures
title_full Nano-Scaled Creep Response of TiAlV Low Density Medium Entropy Alloy at Elevated Temperatures
title_fullStr Nano-Scaled Creep Response of TiAlV Low Density Medium Entropy Alloy at Elevated Temperatures
title_full_unstemmed Nano-Scaled Creep Response of TiAlV Low Density Medium Entropy Alloy at Elevated Temperatures
title_short Nano-Scaled Creep Response of TiAlV Low Density Medium Entropy Alloy at Elevated Temperatures
title_sort nano-scaled creep response of tialv low density medium entropy alloy at elevated temperatures
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6982153/
https://www.ncbi.nlm.nih.gov/pubmed/31861768
http://dx.doi.org/10.3390/ma13010036
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