Fabrication of Ceramic Microchannels with Periodic Corrugated Microstructures as Catalyst Support for Hydrogen Production via Diamond Wire Sawing
Abstract
:1. Introduction
2. Experiments
2.1. Materials and Methods
2.2. Catalyst Loading Performance Test
2.3. Hydrogen Production Performance Test
3. Results and Discussion
3.1. Microchannel Structure and Its Surface Morphology
3.2. Effect of Processing Parameter on Periodic Corrugated Microstructure
3.3. Effect of Periodic Corrugated Microstructure on Catalyst Coating Performance
3.4. Performance Evaluation of Methanol Steaming Reforming
4. Conclusions
- The feasibility of the machining ceramic microchannel catalyst support with diamond wire sawing was verified. On a ceramic plate with a size of 20 mm × 35 mm × 2 mm, 31 microchannels with a width of about 500 μm, a depth of about 1500 μm, and a spacing of about 1000 μm were fabricated. The structure of the processed microchannel was complete, and there was no obvious edge breakage or damage on the front and side. The parallelism and consistency of the microchannels were good.
- The surface of the ceramic samples processed with different processing parameters was observed and analyzed using a 3D confocal laser microscope. The results show that the periodic corrugated microstructure with a larger amplitude and wavelength can be obtained through decreasing the wire speed and increasing the feed speed. In this experiment, when the wire speed and the feed speed are both level 4, the periodic corrugated microstructure with maximum amplitude and wavelength can be obtained, with an amplitude of 6.02 μm and a wavelength of 0.47 mm.
- The ceramic support was loaded with the catalyst via multiple impregnation. The loading strength of the catalyst was tested using strong wind blowing. The experimental results show that the ceramic support with a periodic corrugated microstructure displays better catalyst loading performance. The sample still has 80% of the adhesion ratio after strong wind blowing lasting 90 s. A/λ is defined as a characteristic parameter evaluation index of the periodic corrugated microstructure. The coating performance of the catalyst was consistent with the variation trend of its A/λ.
- A hydrogen production performance test showed that ceramic support with a periodic corrugated microstructure presents good hydrogen production performance. When the inlet flow rate was 1.5 mL/h and the reaction temperature was 300 °C, the methanol conversion rate was as high as 84%, and the hydrogen production rate was 65.3 mmol/h. When the inlet flow rate is 0.5 mL/h and the reaction temperature is 250 °C, after a 13 h stability test, the hydrogen support performance remains basically unchanged.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Methods | Processing Efficiency | Advantages | Disadvantages |
---|---|---|---|
Injection molding | Medium | Simple process; High precision; Low cost | Mold manufacturing expansive; Demolding difficulty |
Laser machining | Low | Path programmable | Expensive; Low precision |
EDM | Very low | Complex shape processing; High precision | Very time consuming |
Micro-milling | Low | High precision; Path programmable | Size limit; Time consuming |
DWS | High | Simple process; High precision; Low cost | Path non-programmable |
Density (g/cm3) | Hardness | E (GPa) | Poisson’s Ratio | Fracture Toughness (MPa·m1/2) |
---|---|---|---|---|
3.85 | HRA 85 | 463 | 0.22 | 4 |
Levels | Wire Speed (mm/s) | Levels | Feed Speed (μm/s) |
---|---|---|---|
1 | 95 | 1 | 6 |
2 | 286 | 2 | 12 |
3 | 476 | 3 | 18 |
4 | 571 | 4 | 24 |
5 | 667 | 5 | 30 |
6 | 762 | ||
7 | 952 |
Parameters | Wire Speed (mm/s) | Feed Speed (μm/s) |
---|---|---|
Group 1 | 952 (Lv.7) | 6, 12, 18, 24 (Lv.1 2 3 4) |
Group 2 | 571, 667, 762, 952 (Lv.4 5 6 7) | 24 (Lv.4) |
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Li, X.; Gao, C.; Yuan, D.; Qin, Y.; Fu, D.; Jiang, X.; Zhou, W. Fabrication of Ceramic Microchannels with Periodic Corrugated Microstructures as Catalyst Support for Hydrogen Production via Diamond Wire Sawing. Materials 2024, 17, 2535. https://doi.org/10.3390/ma17112535
Li X, Gao C, Yuan D, Qin Y, Fu D, Jiang X, Zhou W. Fabrication of Ceramic Microchannels with Periodic Corrugated Microstructures as Catalyst Support for Hydrogen Production via Diamond Wire Sawing. Materials. 2024; 17(11):2535. https://doi.org/10.3390/ma17112535
Chicago/Turabian StyleLi, Xinying, Chao Gao, Ding Yuan, Yuanbao Qin, Dongbi Fu, Xiyang Jiang, and Wei Zhou. 2024. "Fabrication of Ceramic Microchannels with Periodic Corrugated Microstructures as Catalyst Support for Hydrogen Production via Diamond Wire Sawing" Materials 17, no. 11: 2535. https://doi.org/10.3390/ma17112535
APA StyleLi, X., Gao, C., Yuan, D., Qin, Y., Fu, D., Jiang, X., & Zhou, W. (2024). Fabrication of Ceramic Microchannels with Periodic Corrugated Microstructures as Catalyst Support for Hydrogen Production via Diamond Wire Sawing. Materials, 17(11), 2535. https://doi.org/10.3390/ma17112535