Numerical Study on Compact Design in Marine Urea-SCR Systems for Small Ship Applications
Abstract
:1. Introduction
2. Numerical Conditions and Methods
2.1. Model Description
2.2. Numerical Models and Numerical Methods
2.2.1. Governing Equation
2.2.2. Porous Media Model
2.2.3. Urea Spray Model and Reaction Model
2.2.4. NOx Reduction Reaction Model
2.3. Boundary Conditions
3. Results and Discussion
3.1. The Velocity Distribution
3.2. The NH3 Distribution
3.3. The NO Distribution
3.4. Performance Comparison
4. Conclusions
- (1)
- The NO reduction rates of Cases 0–5 were 91.7, 52.1, 59.1, 77.5, and 84.8%, respectively. Compared to the conventional SCR system (Case 0), when the flow of the SCR system with an added DPF was changed from unidirectional to multidirectional and the overall length of the system was reduced by 1/3 (Case 1), the NO reduction rate was 39.6% lower than that of the conventional system. This is because the length of the mixing chamber through which the exhaust gas flows from the DPF to the SCR is too short to enable the sufficient completion of the NH3 conversion reaction.
- (2)
- To increase the NH3 conversion rate, the length of the mixing chamber was increased (Case 2). If the length of the system is reduced by half compared with that of the conventional model, the NO reduction rate increases to approximately 60%, which is still lower than that of the conventional system owing to the larger residence time in the conventional system. In Cases 1 and 2, the SCR filter comprised six stages of equal thickness but encountered a problem wherein most of the flow of exhaust gas leaving the DPF was concentrated in the last stage of the SCR filter.
- (3)
- To solve the problem of flow concentration in the last stage of the SCR, the thickness of the SCR filters was sequentially increased from the first stage (1) to the last stage (6) to increase the area at the rear of the SCR (Case 3). Consequently, the NO reduction performance was improved compared to that of the level of the conventional system. This represented an increase of approximately 80%.
- (4)
- When the shape of the mixing chamber was changed from square to circular to further increase the NO reduction rate (Case 4), the NO reduction performance increased by approximately 84.5%, while a pressure drop performance similar to that of the conventional model was achieved. Case 0 was equipped with only the SCR system, whereas Case 4 included a DPF with the same specifications as the SCR. Therefore, the pressure drop performance was reduced by 50% compared with that of the conventional system. As a result, the final redesigned model (Case 4) proposed in this study is expected to reduce the pressure drop by 50% compared with the conventional model while also reducing the length of the overall system by 50%, resulting in a suitably compact solution for application on small ships.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Case No. | Length (m) | Height (m) | Catalyst Thickness (mm) | Mixing Chamber |
---|---|---|---|---|
Case 1 | 1.85 | 1 | 190 | Square |
Case 2 | 3.380 | 1.25 | 190 | Square |
Case 3 | 3.380 | 1.25 | 50, 100, 100, 150, 250, 350 | Square |
Case 4 | 3.380 | 1.5 | 50, 100, 100, 150, 250, 350 | Circular |
Reaction | Thermal Decomposition | Catalytic Decomposition | ||
---|---|---|---|---|
Pre-Exponential Factor | Activation Energy (J/kg·mol) | Pre-Exponential Factor | Activation Energy (J/kg·mol) | |
Thermolysis | 4.9 × 103 | 2.3 × 107 | 4.5 × 103 | 2.26 × 107 |
Hydrolysis | 2.5 × 105 | 6.22 × 107 | 3.1 × 104 | 1.58 × 107 |
Reaction | Pre-Exponential Factor | Activation Energy (J/kg·mol) |
---|---|---|
2.3 × 108 | 84.9 | |
1.9 × 1012 | 85.1 | |
1.1 × 107 | 72.3 |
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Choi, W.; Choi, S.; Na, S.; Shin, D.; Jeong, H.; Sung, Y. Numerical Study on Compact Design in Marine Urea-SCR Systems for Small Ship Applications. Energies 2024, 17, 187. https://doi.org/10.3390/en17010187
Choi W, Choi S, Na S, Shin D, Jeong H, Sung Y. Numerical Study on Compact Design in Marine Urea-SCR Systems for Small Ship Applications. Energies. 2024; 17(1):187. https://doi.org/10.3390/en17010187
Chicago/Turabian StyleChoi, Wontak, Seunggi Choi, Sangkyung Na, Dongmin Shin, Hyomin Jeong, and Yonmo Sung. 2024. "Numerical Study on Compact Design in Marine Urea-SCR Systems for Small Ship Applications" Energies 17, no. 1: 187. https://doi.org/10.3390/en17010187
APA StyleChoi, W., Choi, S., Na, S., Shin, D., Jeong, H., & Sung, Y. (2024). Numerical Study on Compact Design in Marine Urea-SCR Systems for Small Ship Applications. Energies, 17(1), 187. https://doi.org/10.3390/en17010187