Optimization Study on Synergistic System of Photocatalytic Degradation of AR 26 and UV-LED Heat Dissipation
Abstract
:1. Introduction
2. Results and Discussion
2.1. Optimization of Parameters Affecting Cooling and Photocatalytic Performance
2.1.1. Flow Rate
2.1.2. Wastewater Temperature
Variation of Cooling Water Temperature on UV-LED Array
Variation of the Temperature of Wastewater at Bottom of Reactor
2.2. The Effect of Photocatalytic Performance
2.2.1. Initial AR 26 Concentration
2.2.2. TiO2 Dosage
2.2.3. pH
2.3. Performance Comparison with Conventional Photocatalytic Reactor
2.3.1. Wastewater Degradation Performance
2.3.2. Optical Quantum Efficiency
2.3.3. Analysis of Energy Consumption
3. Materials and Methods
3.1. Materials
3.2. UV-LED/TiO2 Photocatalytic Synergistic System
3.3. Experimental Procedure
3.3.1. Experimental Process of a Synergistic System
3.3.2. Experimental Flow of Conventional Photocatalytic Reactor
3.4. Analysis Methods
3.4.1. Heat Dissipation Performance of UV-LED
3.4.2. Photocatalytic Degradation Performance
4. Conclusions
- (1)
- Wastewater temperature directly influences the performance of the UV-LED lamp. Hence, a high flow rate (80 mL/min) and a low temperature (20 °C) of sewage helps to ensure the long-term operational stability of LED beads.
- (2)
- The parameters affecting the degradation rate, such as the initial concentration, TiO2 concentration, and pH value, were investigated. Under an initial concentration of AR 26 of 45 mg/L, TiO2 with moderate dosing (0.75 g/L) under strong acid conditions (pH = 2) helped to further improve photocatalytic activity. Under these conditions, the decolorization rate of AR 26 was more than 80%.
- (3)
- For the same volume of treated wastewater, the degradation efficiency and photometric efficiency of the coupled system for AR 26 were 2.1 times and 1.5 times those of the conventional photocatalytic reactor, respectively. The unit power consumption of the coupled system was only 193.90 kW·h, which was 18% that of the conventional photocatalytic reactor.
- (4)
- The novel UV-LED cooling and TiO2 photocatalytic wastewater synergistic system has the advantages of simple structure, easy operation and low energy consumption. It can achieve excellent heat dissipation for high-power UV-LED and high wastewater degradation ability at the same time. It promises to be an alternative solution for treating wastewater treatment.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Cooling Water Flow Rate (mL/min) | The Temperature at t1 (°C) | The Temperature at t2 (°C) | The Temperature at t3 (°C) | The Temperature at t4 (°C) | Average Temperature (°C) |
---|---|---|---|---|---|
20 | 36.8 | 42.3 | 39.3 | 31.6 | 37.5 |
40 | 35.7 | 41.1 | 38.7 | 30.6 | 36.4 |
60 | 35.3 | 40.6 | 37.7 | 30.3 | 36.0 |
80 | 34.5 | 40.2 | 36.1 | 29.9 | 35.2 |
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Wang, C.; Bai, H.; Kang, X. Optimization Study on Synergistic System of Photocatalytic Degradation of AR 26 and UV-LED Heat Dissipation. Catalysts 2023, 13, 669. https://doi.org/10.3390/catal13040669
Wang C, Bai H, Kang X. Optimization Study on Synergistic System of Photocatalytic Degradation of AR 26 and UV-LED Heat Dissipation. Catalysts. 2023; 13(4):669. https://doi.org/10.3390/catal13040669
Chicago/Turabian StyleWang, Chen, Haoliang Bai, and Xue Kang. 2023. "Optimization Study on Synergistic System of Photocatalytic Degradation of AR 26 and UV-LED Heat Dissipation" Catalysts 13, no. 4: 669. https://doi.org/10.3390/catal13040669
APA StyleWang, C., Bai, H., & Kang, X. (2023). Optimization Study on Synergistic System of Photocatalytic Degradation of AR 26 and UV-LED Heat Dissipation. Catalysts, 13(4), 669. https://doi.org/10.3390/catal13040669