Journal of Inorganic Materials ›› 2025, Vol. 40 ›› Issue (7): 808-816.DOI: 10.15541/jim20250008
• RESEARCH ARTICLE • Previous Articles Next Articles
YU Leyangyang1,2(), ZHAO Fangxia1(
), ZHANG Shuxin2, XU Yixiang2, NIU Yaran2(
), ZHANG Zhenzhong1, ZHENG Xuebin2
Received:
2025-01-07
Revised:
2025-02-21
Published:
2025-07-20
Online:
2025-03-06
Contact:
ZHAO Fangxia, professor. E-mail: fangxiazhao@126.com;About author:
YU Leyangyang (1999-), female, Master candidate. E-mail: leyangyangyu@126.com
CLC Number:
YU Leyangyang, ZHAO Fangxia, ZHANG Shuxin, XU Yixiang, NIU Yaran, ZHANG Zhenzhong, ZHENG Xuebin. Preparation of High-entropy Boride Powders for Plasma Spraying by Inductive Plasma Spheroidization[J]. Journal of Inorganic Materials, 2025, 40(7): 808-816.
Parameter | Value |
---|---|
Second gas (H2)/slpm | 30-60 |
Primary gas (Ar)/slpm | 120-150 |
Chamber pressure/psig | 3-7 |
Powder feed rate/(g·min-1) | 20-40 |
Table 1 Process parameters for powder preparation by inductive plasma spheroidization
Parameter | Value |
---|---|
Second gas (H2)/slpm | 30-60 |
Primary gas (Ar)/slpm | 120-150 |
Chamber pressure/psig | 3-7 |
Powder feed rate/(g·min-1) | 20-40 |
Powder | D10/μm | D50/μm | D90/μm | D97/μm | Apparent density/(g·cm-3) | Tap density/(g·cm-3) |
---|---|---|---|---|---|---|
MIX | 16.53 | 33.14 | 61.72 | 77.85 | 1.93 | 2.38 |
BTR | 19.65 | 34.92 | 66.66 | 79.61 | 2.25 | 2.82 |
IPS | 11.08 | 28.65 | 56.61 | 73.30 | 4.40 | 4.77 |
Table 2 Particle size distribution, apparent and tap densities of three kinds of (Zr1/4Hf1/4Ta1/4Ti1/4)B2 powders
Powder | D10/μm | D50/μm | D90/μm | D97/μm | Apparent density/(g·cm-3) | Tap density/(g·cm-3) |
---|---|---|---|---|---|---|
MIX | 16.53 | 33.14 | 61.72 | 77.85 | 1.93 | 2.38 |
BTR | 19.65 | 34.92 | 66.66 | 79.61 | 2.25 | 2.82 |
IPS | 11.08 | 28.65 | 56.61 | 73.30 | 4.40 | 4.77 |
Fig. 5 TG-DSC curves of (Zr1/4Hf1/4Ta1/4Ti1/4)B2 powders prepared by three processes (a) and Gibbs free energy for the oxidation reaction of single-component borides (b) Colorful figures are available on website
Fig. 7 SEM images and EDS mappings of (Zr1/3Nb1/3Ti1/3)B2 (a), (Zr1/4Ta1/4Nb1/4Ti1/4)B2 (b), and (Zr1/5Cr1/5Ta1/5Nb1/5Ti1/5)B2 (c) powders prepared by IPS Table shows the corresponding element contents (in atom) of spot 1-spot 6
(Me0.5Zr0.5)B2 | Etot/(eV·atom-1) | Ecoh/(eV·atom-1) |
---|---|---|
(Ti0.5Zr0.5)B2 | -49.14 | -7.29 |
(V0.5Zr0.5)B2 | -49.06 | -7.06 |
(Cr0.5Zr0.5)B2 | -48.38 | -6.62 |
(Nb0.5Zr0.5)B2 | -50.57 | -7.37 |
(Mo0.5Zr0.5)B2 | -50.22 | -7.07 |
(Hf0.5Zr0.5)B2 | -51.37 | -7.49 |
(Ta0.5Zr0.5)B2 | -52.20 | -7.59 |
(W0.5Zr0.5)B2 | -51.72 | -7.32 |
Table 3 Density functional theory energies (Etot) and cohesive energies (Ecoh) of (Me0.5Zr0.5)B2
(Me0.5Zr0.5)B2 | Etot/(eV·atom-1) | Ecoh/(eV·atom-1) |
---|---|---|
(Ti0.5Zr0.5)B2 | -49.14 | -7.29 |
(V0.5Zr0.5)B2 | -49.06 | -7.06 |
(Cr0.5Zr0.5)B2 | -48.38 | -6.62 |
(Nb0.5Zr0.5)B2 | -50.57 | -7.37 |
(Mo0.5Zr0.5)B2 | -50.22 | -7.07 |
(Hf0.5Zr0.5)B2 | -51.37 | -7.49 |
(Ta0.5Zr0.5)B2 | -52.20 | -7.59 |
(W0.5Zr0.5)B2 | -51.72 | -7.32 |
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