Standard

Influence of alloying elements on the thermal stability of ultra-fine-grained Ni alloys. / Zhang, N.; Gunderov, Dmitry ; Yang, T.T.; Cai, X.C.; Shen, T. D. .

в: Journal of Materials Science, Том 54 , № 14, 2019, стр. 10506-10515.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Zhang, N, Gunderov, D, Yang, TT, Cai, XC & Shen, TD 2019, 'Influence of alloying elements on the thermal stability of ultra-fine-grained Ni alloys', Journal of Materials Science, Том. 54 , № 14, стр. 10506-10515. https://doi.org/10.1007/s10853-019-03614-5

APA

Zhang, N., Gunderov, D., Yang, T. T., Cai, X. C., & Shen, T. D. (2019). Influence of alloying elements on the thermal stability of ultra-fine-grained Ni alloys. Journal of Materials Science, 54 (14), 10506-10515. https://doi.org/10.1007/s10853-019-03614-5

Vancouver

Zhang N, Gunderov D, Yang TT, Cai XC, Shen TD. Influence of alloying elements on the thermal stability of ultra-fine-grained Ni alloys. Journal of Materials Science. 2019;54 (14):10506-10515. https://doi.org/10.1007/s10853-019-03614-5

Author

Zhang, N. ; Gunderov, Dmitry ; Yang, T.T. ; Cai, X.C. ; Shen, T. D. . / Influence of alloying elements on the thermal stability of ultra-fine-grained Ni alloys. в: Journal of Materials Science. 2019 ; Том 54 , № 14. стр. 10506-10515.

BibTeX

@article{254efdbc26e242688c94c4c2a338cc81,
title = "Influence of alloying elements on the thermal stability of ultra-fine-grained Ni alloys",
abstract = "Ultra-fine-grained (UFG) metals and alloys have unique mechanical properties at room temperature. However, their grains grow rapidly even at low and mediate temperatures due to the high density of grain boundaries which largely increase their Gibbs free energy. Thus, improving the thermal stability of UFG metals and alloys should be critical to their processing and application at elevated temperatures. In this report, the thermal stability of UFG Ni alloys is studied by changing the type and content of such solutes as Fe, Cr and V. The thermal stability is theoretically predicted by the change in free energy due to solute segregation and by the normalized grain boundary free energy. The thermal stability is also experimentally examined by the change in microhardness after annealing. The experimental results agree well with the theoretical predictions. The thermal stability of UFG Ni is significantly improved by the grain boundary segregation of V and moderately improved by the grain boundary segregation of Cr and Fe. Furthermore, increasing the content of solute improves the thermal stability of UFG Ni(Cr) alloys. Our study should help design UFG Ni alloys with improved thermal stability for practical applications.",
author = "N. Zhang and Dmitry Gunderov and T.T. Yang and X.C. Cai and Shen, {T. D.}",
note = "Zhang, N., Gunderov, D., Yang, T.T. et al. Influence of alloying elements on the thermal stability of ultra-fine-grained Ni alloys. J Mater Sci 54, 10506–10515 (2019). https://doi.org/10.1007/s10853-019-03614-5",
year = "2019",
doi = "10.1007/s10853-019-03614-5",
language = "English",
volume = "54 ",
pages = "10506--10515",
journal = "Journal of Materials Science",
issn = "0022-2461",
publisher = "Springer Nature",
number = "14",

}

RIS

TY - JOUR

T1 - Influence of alloying elements on the thermal stability of ultra-fine-grained Ni alloys

AU - Zhang, N.

AU - Gunderov, Dmitry

AU - Yang, T.T.

AU - Cai, X.C.

AU - Shen, T. D.

N1 - Zhang, N., Gunderov, D., Yang, T.T. et al. Influence of alloying elements on the thermal stability of ultra-fine-grained Ni alloys. J Mater Sci 54, 10506–10515 (2019). https://doi.org/10.1007/s10853-019-03614-5

PY - 2019

Y1 - 2019

N2 - Ultra-fine-grained (UFG) metals and alloys have unique mechanical properties at room temperature. However, their grains grow rapidly even at low and mediate temperatures due to the high density of grain boundaries which largely increase their Gibbs free energy. Thus, improving the thermal stability of UFG metals and alloys should be critical to their processing and application at elevated temperatures. In this report, the thermal stability of UFG Ni alloys is studied by changing the type and content of such solutes as Fe, Cr and V. The thermal stability is theoretically predicted by the change in free energy due to solute segregation and by the normalized grain boundary free energy. The thermal stability is also experimentally examined by the change in microhardness after annealing. The experimental results agree well with the theoretical predictions. The thermal stability of UFG Ni is significantly improved by the grain boundary segregation of V and moderately improved by the grain boundary segregation of Cr and Fe. Furthermore, increasing the content of solute improves the thermal stability of UFG Ni(Cr) alloys. Our study should help design UFG Ni alloys with improved thermal stability for practical applications.

AB - Ultra-fine-grained (UFG) metals and alloys have unique mechanical properties at room temperature. However, their grains grow rapidly even at low and mediate temperatures due to the high density of grain boundaries which largely increase their Gibbs free energy. Thus, improving the thermal stability of UFG metals and alloys should be critical to their processing and application at elevated temperatures. In this report, the thermal stability of UFG Ni alloys is studied by changing the type and content of such solutes as Fe, Cr and V. The thermal stability is theoretically predicted by the change in free energy due to solute segregation and by the normalized grain boundary free energy. The thermal stability is also experimentally examined by the change in microhardness after annealing. The experimental results agree well with the theoretical predictions. The thermal stability of UFG Ni is significantly improved by the grain boundary segregation of V and moderately improved by the grain boundary segregation of Cr and Fe. Furthermore, increasing the content of solute improves the thermal stability of UFG Ni(Cr) alloys. Our study should help design UFG Ni alloys with improved thermal stability for practical applications.

UR - http://www.scopus.com/inward/record.url?scp=85064830874&partnerID=8YFLogxK

U2 - 10.1007/s10853-019-03614-5

DO - 10.1007/s10853-019-03614-5

M3 - Article

VL - 54

SP - 10506

EP - 10515

JO - Journal of Materials Science

JF - Journal of Materials Science

SN - 0022-2461

IS - 14

ER -

ID: 49713743