Refractory TaTiNb, TaTiNbZr, and TaTiNbZrX (X = Mo, W) high entropy alloys by combined use of high energy ball milling and spark plasma sintering: Structural characterization, mechanical properties, electrical resistivity, and thermal conductivity
N F Shkodich
1, 2
,
I. D. Kovalev
3
,
Yu S Vergunova
3
,
Yu B Scheck
3
,
A S Sedegov
1
,
A V Panteleeva
1
,
E Panina
4
,
Nikita Stepanov
4
,
Illia Serhiienko
5
,
4
Publication type: Journal Article
Publication date: 2022-02-01
scimago Q1
wos Q1
SJR: 1.192
CiteScore: 11.8
Impact factor: 6.3
ISSN: 09258388, 18734669
Materials Chemistry
Metals and Alloys
Mechanical Engineering
Mechanics of Materials
Abstract
Refractory TaTiNb, TaTiNbZr, and TaTiNbZrX (X = Mo, W) high entropy alloys were synthesized by combined use of high energy ball milling (HEBM) and spark plasma sintering (SPS). Powders of predominantly bcc TaTiNbZrX (X = Mo, W) refractory high entropy alloys (RHEAs) were successfully prepared by short-term HEBM (60 min) and then SPS-consolidated at 1373 K for 10 min. TEM analysis of the TaTiNbZrW HEA powder obtained after 60 min of HEBM revealed its nanocrystalline structure with an average grain size of up to 50 nm and predominantly uniform distribution of the elements on an atomic scale. The SPS consolidation at 1300⁰C led to an increase in grain sizes up to 100–300 nm. Thus prepared bulk RHEA materials showed ultra-high Vickers hardness of 8.5 GPa and 13 GPa for TaTiNbZrMo and TaTiNbZrW alloys, respectively. The room-temperature compressive strength of TaTiNbZrW RHEA alloy sintered from HEBM powders attained a value of 2665 МPа, which is 30% higher than that for the same alloy produced from non-milled powders. Bulk samples of synthesized RHEA show a higher electrical resistivity ( r ) compared to the samples prepared from non-milled powder blends. Within the temperature range 298–573 K, the maximum r value for TaTiNbZrW RHEA alloy was found to vary between 132 and 143.6 Ω cm. A decrease in thermal conductivity was observed: (a) upon introduction of Zr, Mo, and W atoms to TaTiNb-based alloys due to additional phonon scattering on lattice distortions caused by different radius and mass of Zr, Mo, and W atoms and (b) for the HEBM-prepared bulk alloys because of additional phonon scattering on the surface of mechanocomposites. • Nanocrystalline bcc TaTiNbZrX (X = Mo, W) RHEAs were synthesized by short-term HEBM • TaTiNbZrW RHEA showed an ultra-high Vickers hardness of 13 GPa • Electrical resistivity of TaTiNbZrW RHEA was within the range 132–143.6 Ω cm • At 295 K, the compressive strength of TaTiNbZrW RHEA attained a value of 2665 МPа
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51
Total citations:
51
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(65%)
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Kuskov K. V. et al. Refractory TaTiNb, TaTiNbZr, and TaTiNbZrX (X = Mo, W) high entropy alloys by combined use of high energy ball milling and spark plasma sintering: Structural characterization, mechanical properties, electrical resistivity, and thermal conductivity // Journal of Alloys and Compounds. 2022. Vol. 893. p. 162030.
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Shkodich N. F., Kovalev I. D., Vergunova Yu. S., Scheck Yu. B., Sedegov A. S., Panteleeva A. V., Kuskov K. V., Panina E., Stepanov N., Serhiienko I., Moskovskikh D. O. Refractory TaTiNb, TaTiNbZr, and TaTiNbZrX (X = Mo, W) high entropy alloys by combined use of high energy ball milling and spark plasma sintering: Structural characterization, mechanical properties, electrical resistivity, and thermal conductivity // Journal of Alloys and Compounds. 2022. Vol. 893. p. 162030.
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TY - JOUR
DO - 10.1016/j.jallcom.2021.162030
UR - https://doi.org/10.1016/j.jallcom.2021.162030
TI - Refractory TaTiNb, TaTiNbZr, and TaTiNbZrX (X = Mo, W) high entropy alloys by combined use of high energy ball milling and spark plasma sintering: Structural characterization, mechanical properties, electrical resistivity, and thermal conductivity
T2 - Journal of Alloys and Compounds
AU - Shkodich, N F
AU - Kovalev, I. D.
AU - Vergunova, Yu S
AU - Scheck, Yu B
AU - Sedegov, A S
AU - Panteleeva, A V
AU - Kuskov, Kirill Vasilevich
AU - Panina, E
AU - Stepanov, Nikita
AU - Serhiienko, Illia
AU - Moskovskikh, Dmitry O.
PY - 2022
DA - 2022/02/01
PB - Elsevier
SP - 162030
VL - 893
SN - 0925-8388
SN - 1873-4669
ER -
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@article{2022_Kuskov,
author = {N F Shkodich and I. D. Kovalev and Yu S Vergunova and Yu B Scheck and A S Sedegov and A V Panteleeva and Kirill Vasilevich Kuskov and E Panina and Nikita Stepanov and Illia Serhiienko and Dmitry O. Moskovskikh},
title = {Refractory TaTiNb, TaTiNbZr, and TaTiNbZrX (X = Mo, W) high entropy alloys by combined use of high energy ball milling and spark plasma sintering: Structural characterization, mechanical properties, electrical resistivity, and thermal conductivity},
journal = {Journal of Alloys and Compounds},
year = {2022},
volume = {893},
publisher = {Elsevier},
month = {feb},
url = {https://doi.org/10.1016/j.jallcom.2021.162030},
pages = {162030},
doi = {10.1016/j.jallcom.2021.162030}
}
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