Numerical Simulation Analysis of Cu2+ Concentration for Marine Biological Control Based on Seawater Lifting Pump
Abstract
1. Introduction
2. Mathematical Calculation Model
- (1)
- Continuity equation
- (2)
- Momentum equation
- (3)
- Energy equation
- (4)
- Bernoulli equation
3. Physical Model
4. Results and Discussion
4.1. Influence of Seawater Flow Rate on Concentration of Injected Cu2+
4.2. Effect of Large Pump Operation on Injecting Cu2+ Concentration
4.3. Effect of Small Pump Operation on Injecting Cu2+ Concentration
4.4. Effect of Installing Baffles on Injecting Cu2+ Concentration
4.5. Comparative Analysis with On-Site Data
5. Conclusions
- (1)
- Based on CFD, it is possible to accurately simulate the concentration of Cu2+ injected into electrolytic seawater. To ensure that the Cu2+ concentration within a 10 cm range around the lifting pump can reach 3 ppb, it is necessary to analyse the upstream range data due to the influence of the seawater flow direction.
- (2)
- Upon cessation of the lift pump, the Cu2+ concentration in the 10 cm area surrounding the pump is observed to reach the requisite level of 3 ppb. As the seawater flow rate increases, the required Cu2+ concentration for injection gradually increases. The maximum permissible seawater flow rate is 1.9 m/s, and the requisite Cu2+ concentration for injection is 41.9 ug/L.
- (3)
- In circumstances where the lifting pump is operated in an alternating manner, the concentration of Cu2+ within a 10 cm radius of the pump is elevated to the requisite level of 3 ppb. As the seawater flow rate increases, the required Cu2+ concentration for injection gradually increases. The seawater’s upward flow, driven by the pump’s position, results in a lower required Cu2+ concentration for injection when compared to the downstream pumps.
- (4)
- The installation of baffles in the vicinity of the lifting pump was demonstrated to be an effective measure for mitigating the impact of seawater flow on the concentration of Cu2+ injected into electrolytic seawater. This approach was shown to result in a substantial reduction in the required Cu2+ concentration.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Maximum Grid Size (mm) | Minimum Local Grid Size (mm) | Total Number of Units | Cu2+ Concentration (mg/L) | Relative Error/ % |
---|---|---|---|---|
120 | 120 | 50,000 | 28.3 | 23.7 |
60 | 20 | 300,000 | 25.1 | 11.2 |
30 | 8 | 1,200,000 | 23.4 | 5.8 |
15 | 2 | 4,500,000 | 22.5 | - |
Operating Conditions | CFD Simulation Data/(ug·L−1) | Actual Production Data/(ug·L−1) | Relative Error/% |
---|---|---|---|
When Two Pumps are Shut Down with Baffles Around the Pumps | 41.9 | 45 | 6.9 |
When Two Pumps are Shut Down without Baffles Around the Pumps | 3.6 | 3.4 | 5.6 |
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Zhang, Z.; Liu, J.; Li, L.; Yang, Q.; Meng, L.; Li, Z. Numerical Simulation Analysis of Cu2+ Concentration for Marine Biological Control Based on Seawater Lifting Pump. Processes 2025, 13, 2440. https://doi.org/10.3390/pr13082440
Zhang Z, Liu J, Li L, Yang Q, Meng L, Li Z. Numerical Simulation Analysis of Cu2+ Concentration for Marine Biological Control Based on Seawater Lifting Pump. Processes. 2025; 13(8):2440. https://doi.org/10.3390/pr13082440
Chicago/Turabian StyleZhang, Zhishu, Jie Liu, Lei Li, Qingmiao Yang, Longqi Meng, and Zhaoxuan Li. 2025. "Numerical Simulation Analysis of Cu2+ Concentration for Marine Biological Control Based on Seawater Lifting Pump" Processes 13, no. 8: 2440. https://doi.org/10.3390/pr13082440
APA StyleZhang, Z., Liu, J., Li, L., Yang, Q., Meng, L., & Li, Z. (2025). Numerical Simulation Analysis of Cu2+ Concentration for Marine Biological Control Based on Seawater Lifting Pump. Processes, 13(8), 2440. https://doi.org/10.3390/pr13082440