Study on Coated Zr-V-Cr Getter with Pore Gradient Structure for Hydrogen Masers
Abstract
:1. Introduction
2. Materials and Methods
- (1)
- Preparation of Zr-V-Cr matrix samples:
- (2)
- Preparation of Zr100-xCux (x = 0, 2, 4, 6) film slurry:
- (3)
- Preparation of (Zr100-x-Cux)/(Zr-V-Cr)(x = 0, 2, 4, 6) coated samples:
- (4)
- Test of sample inspiratory performance:
- (5)
- Microscopic analysis of samples and powders:
- (6)
- Test of mechanical properties and anti-dropping powders of samples:
3. Results and Discussion
3.1. Effect of Cu Contents in Zr100-xCux (x = 0, 2, 4, 6) Film on Sorption Performance of Coated Samples
3.2. Study on the Sorption Performance of (Zr98Cu2)/(Zr56.97V35.85Cr7.18) Getter
3.3. Analysis of Mechanical Properties of (Zr98Cu2)/(Zr-V-Cr) Getter
4. Conclusions
- The film layer was strengthened by adding element Cu into Zr powder, and the Zr-Cu alloy film had the properties of high strength, high hardness, corrosion resistance, and wear resistance. In the study, it was found that when the Cu content was 2 wt.%, (Zr98Cu2)/(Zr-V-Cr) sample, which ensured the sorption characteristics, obtained the best surface structure.
- The Zr-Cu gradient structure film with small pore size was formed by the Zr-Cu alloy powder with small particle size, which covered the surface of the Zr-V-Cr matrix with large particle size. So Zr-Cu film prevented the particles on the surface of the Zr-V-Cr alloy from falling off. It was proved that (Zr98Cu2)/(Zr-V-Cr) getter solved the problem of material powder dropping by SEM images, particle size analysis, and Infrared signal images.
- The getter performance experiment in this paper proved that the gettering performance of (Zr98Cu2)/(Zr-V-Cr) getter was superior to a product of SAES getters. Therefore, the coated sample had good gettering performance and met the use requirements. After random vibration test, the coated sample still had good mechanical properties. Therefore, (Zr98Cu2)/(Zr-V-Cr) getter solved the contradiction between strength and getter performance. It could be satisfactorily applied to the getter pump in hydrogen masers.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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X Value | Weight of Zr Powder (g) | Weight of Cu Powder (g) |
---|---|---|
0 | 15 | 0 |
2 | 14.7 | 0.3 |
4 | 14.4 | 0.6 |
6 | 14.1 | 0.9 |
Name | X Value | Initial Pressure P0 (Pa) | Extreme Pressure P1 (Pa) | Co Differential Pressure ∆P (Pa) | Co Sorption Capacity Q (Pa·cm3·g−1) | Performance Evaluation |
---|---|---|---|---|---|---|
Zr/(Zr-V-Cr) sample | 0 | 40 | 21.781 | 18.219 | 9122 | Good |
(Zr98Cu2)/(Zr-V-Cr) sample | 2 | 40 | 21.839 | 18.161 | 8827 | Good |
(Zr96Cu4)/(Zr-V-Cr) sample | 4 | 40 | 21.989 | 18.011 | 8063 | Poor |
(Zr94Cu6)/(Zr-V-Cr) sample | 6 | 40 | 22.134 | 17.864 | 7340 | Poor |
Sample Type | Initial Pressure P0 (Pa) | Extreme Pressure P1 (Pa) | Co Differential Pressure ∆P (Pa) | CO Sorption Capacity Q (Pa·cm3·g−1) | Performance Evaluation |
---|---|---|---|---|---|
Zr-V-Cr Matrix | 40 | 21.319 | 18.681 | 11,474 | Good |
(Zr98Cu2)/(Zr-V-Cr) getter | 40 | 21.839 | 18.161 | 8827 | Good |
Sample Type | Initial Hydrogen Absorption Rate (cm3·s−1·g−1) | 1 h Hydrogen Absorption Capacity (Pa·cm3·g−1) | 2 h Hydrogen Absorption Capacity (Pa·cm3·g−1) |
---|---|---|---|
Zr-V-Cr Matrix | 28,822 | 25,298 | 40,017 |
(Zr98Cu2)/(Zr-V-Cr) getter | 20,061 | 20,168 | 31,107 |
SAES getter | 13,435 | 10,422 | / |
Sample Type | Maximum Particle Size (μm) | Minimum Particle Size (μm) | Average Particle Size (μm) | ≥10 μm | ≥5 μm |
---|---|---|---|---|---|
Zr-V-Cr matrix powder | 124.5 | 1.783 | 24.23 | 78% | 93% |
Zr98Cu2 film slurry powder | 18.5 | 0.265 | 3.34 | 4% | 30% |
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Zhang, J.; Song, H.; Fang, J.; Hou, X.; Huang, S.; Xiang, J.; Lu, T.; Zhou, C. Study on Coated Zr-V-Cr Getter with Pore Gradient Structure for Hydrogen Masers. Materials 2022, 15, 6147. https://doi.org/10.3390/ma15176147
Zhang J, Song H, Fang J, Hou X, Huang S, Xiang J, Lu T, Zhou C. Study on Coated Zr-V-Cr Getter with Pore Gradient Structure for Hydrogen Masers. Materials. 2022; 15(17):6147. https://doi.org/10.3390/ma15176147
Chicago/Turabian StyleZhang, Jiale, Huihui Song, Jinyu Fang, Xueling Hou, Shuiming Huang, Jie Xiang, Tao Lu, and Chao Zhou. 2022. "Study on Coated Zr-V-Cr Getter with Pore Gradient Structure for Hydrogen Masers" Materials 15, no. 17: 6147. https://doi.org/10.3390/ma15176147
APA StyleZhang, J., Song, H., Fang, J., Hou, X., Huang, S., Xiang, J., Lu, T., & Zhou, C. (2022). Study on Coated Zr-V-Cr Getter with Pore Gradient Structure for Hydrogen Masers. Materials, 15(17), 6147. https://doi.org/10.3390/ma15176147