Standard

Crystallization and its kinetics of soft magnetic (Fe1−xNix)79B12P5Si3C1 glassy alloy ribbons. / Zanaeva, E. N.; Milkova, D. A.; Bazlov, A. I.; Ubyivovk, E. V.; Tabachkova, N. Yu; Churyumov, A. Yu; Inoue, A.

в: Journal of Alloys and Compounds, Том 888, 161475, 25.12.2021.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Zanaeva, EN, Milkova, DA, Bazlov, AI, Ubyivovk, EV, Tabachkova, NY, Churyumov, AY & Inoue, A 2021, 'Crystallization and its kinetics of soft magnetic (Fe1−xNix)79B12P5Si3C1 glassy alloy ribbons', Journal of Alloys and Compounds, Том. 888, 161475. https://doi.org/10.1016/j.jallcom.2021.161475

APA

Zanaeva, E. N., Milkova, D. A., Bazlov, A. I., Ubyivovk, E. V., Tabachkova, N. Y., Churyumov, A. Y., & Inoue, A. (2021). Crystallization and its kinetics of soft magnetic (Fe1−xNix)79B12P5Si3C1 glassy alloy ribbons. Journal of Alloys and Compounds, 888, [161475]. https://doi.org/10.1016/j.jallcom.2021.161475

Vancouver

Zanaeva EN, Milkova DA, Bazlov AI, Ubyivovk EV, Tabachkova NY, Churyumov AY и пр. Crystallization and its kinetics of soft magnetic (Fe1−xNix)79B12P5Si3C1 glassy alloy ribbons. Journal of Alloys and Compounds. 2021 Дек. 25;888. 161475. https://doi.org/10.1016/j.jallcom.2021.161475

Author

Zanaeva, E. N. ; Milkova, D. A. ; Bazlov, A. I. ; Ubyivovk, E. V. ; Tabachkova, N. Yu ; Churyumov, A. Yu ; Inoue, A. / Crystallization and its kinetics of soft magnetic (Fe1−xNix)79B12P5Si3C1 glassy alloy ribbons. в: Journal of Alloys and Compounds. 2021 ; Том 888.

BibTeX

@article{340e6c882c1c4c4ea97799481a829cc7,
title = "Crystallization and its kinetics of soft magnetic (Fe1−xNix)79B12P5Si3C1 glassy alloy ribbons",
abstract = "A glassy phase is formed over the whole composition range for melt-spun (Fe1−xNix)79B12P5Si3C1 with x = 0; 0.2; 0.4; 0.5; 0.6 alloy ribbons and these glassy ribbons exhibit good bending plasticity. The Ni-containing glassy alloys show glass transition, followed by a supercooled liquid (SCL) region and then multistage crystallization for the alloys with x = 0.5 and 0.6 (hereafter 0.5Ni and 0.6Ni alloys). The 0.5Ni glassy alloy exhibits the largest SCL region of 43 K and good soft magnetic properties even in as-spun state, i.e., low coercive force of 4.8 A/m, effective permeability of 7400 at 1 kHz and saturation magnetization of 0.80 T. The bending plasticity remains unchanged in the wide annealing temperature range below Tg. The crystallization proceeds in the processes of glassy (G) → bcc(α)Fe(Si) + Fe3B for the 0–0.2 Ni alloys, G → fcc(γ)(Fe,Ni) + Fe3(B,C) + Fe3Ni3(B,C) for the 0.4Ni alloy and G → G{\textquoteright} + γ(Fe,Ni) → γ(Fe,Ni) + Ni5P2 + Fe4P + Fe3Ni3(B,C) for the 0.5Ni and 0.6Ni alloys. Analyses of crystallization reaction in isochronal and isothermal conditions were performed via Kissinger and JMAK models and the activation energy for crystallization is much larger for the 0.5Ni glassy alloy. The appearance of the largest SCL region as well as the highest activation energy for the 0.5Ni alloy is due to the necessity of the simultaneous decomposition to the four crystalline phases. The better magnetic softness for the 0.5Ni alloy is presumably due to the development of medium-range ordered atomic configurations which enable the appearances of the largest SCL region as well as the lower internal stress state. The combination of useful properties for the 0.5Ni glassy alloy is promising for useful soft magnetic materials with mass production ability.",
keywords = "Calorimetry, Kinetics, Metallic glasses, Quenching, Rapid-solidification, Transmission electron microscopy, TEM, X-ray diffraction, FORMING ABILITY, Transmission electron microscopy, NI ADDITION, SI, BULK METALLIC GLASSES, TEM, HIGH SATURATION MAGNETIZATION",
author = "Zanaeva, {E. N.} and Milkova, {D. A.} and Bazlov, {A. I.} and Ubyivovk, {E. V.} and Tabachkova, {N. Yu} and Churyumov, {A. Yu} and A. Inoue",
note = "Publisher Copyright: {\textcopyright} 2021 Elsevier B.V.",
year = "2021",
month = dec,
day = "25",
doi = "10.1016/j.jallcom.2021.161475",
language = "English",
volume = "888",
journal = "Journal of Alloys and Compounds",
issn = "0925-8388",
publisher = "Elsevier",

}

RIS

TY - JOUR

T1 - Crystallization and its kinetics of soft magnetic (Fe1−xNix)79B12P5Si3C1 glassy alloy ribbons

AU - Zanaeva, E. N.

AU - Milkova, D. A.

AU - Bazlov, A. I.

AU - Ubyivovk, E. V.

AU - Tabachkova, N. Yu

AU - Churyumov, A. Yu

AU - Inoue, A.

N1 - Publisher Copyright: © 2021 Elsevier B.V.

PY - 2021/12/25

Y1 - 2021/12/25

N2 - A glassy phase is formed over the whole composition range for melt-spun (Fe1−xNix)79B12P5Si3C1 with x = 0; 0.2; 0.4; 0.5; 0.6 alloy ribbons and these glassy ribbons exhibit good bending plasticity. The Ni-containing glassy alloys show glass transition, followed by a supercooled liquid (SCL) region and then multistage crystallization for the alloys with x = 0.5 and 0.6 (hereafter 0.5Ni and 0.6Ni alloys). The 0.5Ni glassy alloy exhibits the largest SCL region of 43 K and good soft magnetic properties even in as-spun state, i.e., low coercive force of 4.8 A/m, effective permeability of 7400 at 1 kHz and saturation magnetization of 0.80 T. The bending plasticity remains unchanged in the wide annealing temperature range below Tg. The crystallization proceeds in the processes of glassy (G) → bcc(α)Fe(Si) + Fe3B for the 0–0.2 Ni alloys, G → fcc(γ)(Fe,Ni) + Fe3(B,C) + Fe3Ni3(B,C) for the 0.4Ni alloy and G → G’ + γ(Fe,Ni) → γ(Fe,Ni) + Ni5P2 + Fe4P + Fe3Ni3(B,C) for the 0.5Ni and 0.6Ni alloys. Analyses of crystallization reaction in isochronal and isothermal conditions were performed via Kissinger and JMAK models and the activation energy for crystallization is much larger for the 0.5Ni glassy alloy. The appearance of the largest SCL region as well as the highest activation energy for the 0.5Ni alloy is due to the necessity of the simultaneous decomposition to the four crystalline phases. The better magnetic softness for the 0.5Ni alloy is presumably due to the development of medium-range ordered atomic configurations which enable the appearances of the largest SCL region as well as the lower internal stress state. The combination of useful properties for the 0.5Ni glassy alloy is promising for useful soft magnetic materials with mass production ability.

AB - A glassy phase is formed over the whole composition range for melt-spun (Fe1−xNix)79B12P5Si3C1 with x = 0; 0.2; 0.4; 0.5; 0.6 alloy ribbons and these glassy ribbons exhibit good bending plasticity. The Ni-containing glassy alloys show glass transition, followed by a supercooled liquid (SCL) region and then multistage crystallization for the alloys with x = 0.5 and 0.6 (hereafter 0.5Ni and 0.6Ni alloys). The 0.5Ni glassy alloy exhibits the largest SCL region of 43 K and good soft magnetic properties even in as-spun state, i.e., low coercive force of 4.8 A/m, effective permeability of 7400 at 1 kHz and saturation magnetization of 0.80 T. The bending plasticity remains unchanged in the wide annealing temperature range below Tg. The crystallization proceeds in the processes of glassy (G) → bcc(α)Fe(Si) + Fe3B for the 0–0.2 Ni alloys, G → fcc(γ)(Fe,Ni) + Fe3(B,C) + Fe3Ni3(B,C) for the 0.4Ni alloy and G → G’ + γ(Fe,Ni) → γ(Fe,Ni) + Ni5P2 + Fe4P + Fe3Ni3(B,C) for the 0.5Ni and 0.6Ni alloys. Analyses of crystallization reaction in isochronal and isothermal conditions were performed via Kissinger and JMAK models and the activation energy for crystallization is much larger for the 0.5Ni glassy alloy. The appearance of the largest SCL region as well as the highest activation energy for the 0.5Ni alloy is due to the necessity of the simultaneous decomposition to the four crystalline phases. The better magnetic softness for the 0.5Ni alloy is presumably due to the development of medium-range ordered atomic configurations which enable the appearances of the largest SCL region as well as the lower internal stress state. The combination of useful properties for the 0.5Ni glassy alloy is promising for useful soft magnetic materials with mass production ability.

KW - Calorimetry

KW - Kinetics

KW - Metallic glasses

KW - Quenching

KW - Rapid-solidification

KW - Transmission electron microscopy, TEM

KW - X-ray diffraction

KW - FORMING ABILITY

KW - Transmission electron microscopy

KW - NI ADDITION

KW - SI

KW - BULK METALLIC GLASSES

KW - TEM

KW - HIGH SATURATION MAGNETIZATION

UR - http://www.scopus.com/inward/record.url?scp=85113241050&partnerID=8YFLogxK

U2 - 10.1016/j.jallcom.2021.161475

DO - 10.1016/j.jallcom.2021.161475

M3 - Article

AN - SCOPUS:85113241050

VL - 888

JO - Journal of Alloys and Compounds

JF - Journal of Alloys and Compounds

SN - 0925-8388

M1 - 161475

ER -

ID: 85686937