Self-Driven Cycle and Thermal Characteristics of Seawater Battery System with a Preheater
Abstract
1. Introduction
2. Operating Characteristics of SMAB-P System
2.1. The Loop Model of SMAB-P System
2.2. The Influence of Heat Recovery Rate on SMAB-P System Performance
2.3. The Influence of Electrode Plate Height on SMAB-P System Performance
2.4. The Influence of Electrode Plate Width on SMAB-P System Performance
2.5. The Influence of Annular Gap of the Double-Pipe Preheater on SMAB-P System Performance
3. Distribution Characteristics of Physical Field in SMAB-P System
3.1. The Simulation Model of Physical Field
3.2. Distribution Characteristics of Temperature Field
3.3. Distribution Characteristics of Velocity Field
4. Conclusions
- (1)
- With the increase of the system’s heat recovery rate, the average temperature in the electrode plate area gradually increases, and the maximum temperature shows a non-monotonic changing trend. By implementing the proposed SMAB-P system, the average and maximum temperatures of seawater in the electrode plate area can be enhanced by 54% and 15%, respectively. Consequently, the electrical conductivity of seawater within the system can be increased by approximately 20%, leading to a significant reduction in ohmic losses and an enhancement in the load voltage of the battery.
- (2)
- Increasing the height or width of the electrode plates can enhance the system’s self-driven force, the circulation flow rate, and the average and maximum temperatures in the electrode plate area. However, excessive increase in the height and width of the electrode plates has a relatively limited effect on raising the seawater temperature in the electrode plate area.
- (3)
- The reduction of the annular space in the double-pipe preheater can enhance the seawater temperature in the electrode plate area, particularly when the annular spatial spacing is less than 0.004 m, where the impact is more pronounced. However, excessively reducing the annular space may lead to an increase in system flow resistance and a decrease in flow rate, which could adversely affect the seawater replacement within the electrode plate area.
- (4)
- In the electrode plate area, the distribution of seawater temperature gradient along the height direction of the electrode plates is relatively uniform. The temperature difference on the flow cross-section is very small and can be ignored. The seawater velocities in the electrode plate channels are relatively low and evenly distributed, and the velocity distribution in each channel is similar.
- (5)
- Comparing the results of the two simulation methods, the relative error of the maximum temperature is less than 5%, and the relative error of the system flow rate is less than 12%, indicating that the results of the two simulation calculation methods are basically consistent.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Chen, P.; Zheng, Q. Investigation on flow field optimization of seawater activated battery based on flow channel structure design. J. Energy Storage 2024, 84, 110798. [Google Scholar] [CrossRef]
- Li, S.; Tian, X. Progress of seawater batteries: From mechanisms, materials to applications. J. Power Sources 2024, 617, 235161. [Google Scholar] [CrossRef]
- Kim, Y.; Lee, W.-G. Secondary Seawater Batteries. In Seawater Batteries. Green Energy and Technology; Springer: Singapore, 2022; pp. 91–293. [Google Scholar] [CrossRef]
- Guo, Y.; Cao, Y.; Lu, J.; Zheng, X.; Deng, Y. The concept, structure, and progress of seawater metal-air batteries. Microstructures 2023, 3, 2023038. [Google Scholar] [CrossRef]
- Yu, J.; Zhao, C.-X.; Liu, J.-N.; Li, B.-Q.; Tang, C.; Zhang, Q. Seawater-based electrolyte for zinc–air batteries. Green Chem. Eng. 2020, 1, 117–123. [Google Scholar] [CrossRef]
- Li, Y.; Lu, J. Metal-Air Batteries: Will They Be Future Electrochemical Energy Storage of Choice? ACS Energy Lett. 2017, 2, 1370–1377. [Google Scholar] [CrossRef]
- Liu, Q.; Pan, Z.; Wang, E.; An, L.; Sun, G. Aqueous metal-air batteries: Fundamentals and applications. Energy Storage Mater. 2020, 27, 478–505. [Google Scholar] [CrossRef]
- Tian, H.; Li, Z.; Feng, G.; Yang, Z.; Yang, Y. Stable, high-performance, dendrite-free, seawater-based aqueous batteries. Nat. Commun. 2021, 12, 237. [Google Scholar] [CrossRef] [PubMed]
- Liu, R.L.; Scully, J.R.; Williams, G.; Birbilis, N. Reducing the corrosion rate of magnesium via microalloying additions of group 14 and 15 elements. Electrochim. Acta 2018, 260, 184–195. [Google Scholar] [CrossRef]
- Li, J.; Wan, K.; Jiang, Q.; Sun, H.; Li, Y.; Hou, B.; Zhu, L.; Liu, M. Corrosion and Discharge Behaviors of Mg-Al-Zn and Mg-Al-Zn-In Alloys as Anode Materials. Metals 2016, 6, 65. [Google Scholar] [CrossRef]
- Shi, Y.; Peng, C.; Feng, Y.; Wang, R.; Wang, N. Enhancement of discharge properties of an extruded Mg-Al-Pb anode for seawater-activated battery by lanthanum addition. J. Alloys Compd. 2017, 721, 392–404. [Google Scholar] [CrossRef]
- An, Q.; Hu, H.; Li, N.; Wei, J.; Wei, C.; Wang, H.; Woodall, J.M.; Gao, Q. Strategies for improving flow rate control of hydrogen generated by Al-rich alloys for on-board applications—ScienceDirect. Int. J. Hydrogen Energy 2019, 44, 27695–27703. [Google Scholar] [CrossRef]
- An, Q.; Gao, Q.; Wang, H.; Wei, C.; Li, N. Insight into the indium-related morphology transformation and application for hydrogen production of Al-rich alloys. J. Alloys Compd. 2020, 842, 155864. [Google Scholar] [CrossRef]
- Nestoridi, M.; Pletcher, D.; Wood, R.J.K.; Wang, S.; Jones, R.L.; Stokes, K.R.; Wilcock, I. The study of aluminium anodes for high power density Al/air batteries with brine electrolytes. J. Power Sources 2008, 178, 445–455. [Google Scholar] [CrossRef]
- Choi, M.C.; Seo, H.; Yeon, J.-M.; Heo, B.; Choi, S.-Y.; Na, B.T.; Park, S.; Ravichandran, M.; Britton-Gray, F.; Cheong, J.Y.; et al. Critical Advances in Seawater Battery Technology: From System Architecture to Anode Materials. Korean J. Chem. Eng. 2025, 42, 1411–1425. [Google Scholar] [CrossRef]
- Yu, J.; Ma, L.; Duan, T.; Xin, Y.; Lv, Y.; Zhang, H. Electrocatalytic oxygen reduction of three-dimensional carbon fiber-based composites for seawater oxygen-dissolved battery. Carbon Lett. 2022, 32, 537–546. [Google Scholar] [CrossRef]
- Jiao, W.; Fan, Y.; Huang, C.; Sanglin. Effect of modified polyacrylonitrile-based carbon fiber on the oxygen reduction reactions in seawater batteries. Ionics 2018, 24, 285–296. [Google Scholar] [CrossRef]
- Zhang, J.; Zhang, H.; Zhang, Y.; Wang, X.; Li, H.; Feng, F.; Wang, K.; Zhang, G.; Sun, S.; Zhang, Y. Approaches to construct high-performance Mg-air batteries: From mechanism to materials design. J. Mater. Chem. A 2023, 11, 7924–7948. [Google Scholar] [CrossRef]
- Zhou, Y.; Lu, X.; Lin, G.; Wang, F.; Światowska, J. Towards high-performance aqueous Mg batteries: Insights into corrosion mitigation through material and electrolyte design. Corros. Sci. 2025, 253, 113016. [Google Scholar] [CrossRef]
- Yu, Z.; Liu, L. Recent Advances in Hybrid Seawater Electrolysis for Hydrogen Production. Adv. Mater. 2024, 36, e2308647. [Google Scholar] [CrossRef]
- Chen, J.; Sun, L.; Wang, K.; Zhang, Y. Research and applications of rechargeable seawater battery. J. Energy Storage 2024, 76, 109659. [Google Scholar] [CrossRef]
- Hasvold, O.; Henriksen, H.; Melvaer, E.; Citi, G.; Johansen, B.O.; Kjonigsen, T.; Galetti, R. Sea-water battery for subsea control systems. J. Power Sources 1997, 65, 253–261. [Google Scholar] [CrossRef]
- Lu, Y.; Yang, L.; Zhang, Y.; Zhao, Q.; Sang, L.; Ding, F.; Xu, H. Influence of simulating deep-sea environmental factors on cathodic performance of seawater battery. J. Oceanol. Limnol. 2020, 38, 334–341. [Google Scholar] [CrossRef]
- Liu, Q.; Yan, Z.; Wang, E.; Wang, S.; Sun, G. A high-specific-energy magnesium/water battery for full-depth ocean application. Int. J. Hydrogen Energy 2017, 42, 23045–23053. [Google Scholar] [CrossRef]
- Talebi, S.; Goudarzi, N.; Nourouzi Dehka, S. Using organic fluids in natural circulation loop systems for absorbing of heat from low temperature renewable energy sources. Energy 2021, 222, 119962. [Google Scholar] [CrossRef]
- Boopalan, V.; Kumar Arumugam, S.; Rajesh Kanna, P. Numerical investigation on the impact of circumferentially varying temperature on the buoyancy and heat transfer characteristics of supercritical CO2 natural circulation loop. Appl. Therm. Eng. 2024, 248, 123165. [Google Scholar] [CrossRef]
- Yu, C.-W.; Huang, C.S.; Tzeng, C.T.; Lai, C.-M. Effects of the aspect ratio of a rectangular thermosyphon on its thermal performance. Energies 2019, 12, 4014. [Google Scholar] [CrossRef]
- Cobanolu, N.; Karadeniz, Z.H. Effect of nanofluid thermophysical properties on the performance prediction of single-phase natural circulation loops. Energies 2020, 13, 2523. [Google Scholar] [CrossRef]
- Lai, Z.; Tian, W.; Chen, C.; Wang, M.; Zhang, K.; Qiu, S.; Su, G. Experimental study on thermal hydraulic characteristics of natural circulation loop under motion condition. Appl. Therm. Eng. 2022, 207, 118122. [Google Scholar] [CrossRef]
- Novarese, E.; Benzoni, G.; Introini, C.; Lorenzi, S.; Savoldi, L.; Cammi, A. Stability analysis on two single-phase coupled natural circulation loops. Int. J. Heat Mass Transf. 2024, 232, 125886. [Google Scholar] [CrossRef]
- Li, Y.; Chen, G.; Waqar Ali Shah, S.; Gao, Y.; Pan, C. Natural circulation oscillation in a seawater loop during startup. Appl. Therm. Eng. 2024, 238, 121999. [Google Scholar] [CrossRef]
- Doda, N.; Igawa, K.; Iwasaki, T.; Murakami, S.; Tanaka, M. Development of a statistical evaluation method for core hot spot temperature in sodium-cooled fast reactor under natural circulation conditions. Nucl. Eng. Des. 2023, 410, 112377. [Google Scholar] [CrossRef]
- Shen, X.; Li, N.; Lu, J.; A, Y. Heating performance of solar building integrated wall under natural circulation. Energies 2020, 13, 6288. [Google Scholar] [CrossRef]
- Jing, H.; Quan, Z.; Zhao, Y.; Wang, L.; Ren, R.; Dong, R.; Wu, Y. Experimental Investigation of Heat Transfer and Flow Characteristics of Split Natural Cooling System for Data Center Based on Micro Heat Pipe Array. Energies 2022, 15, 4250. [Google Scholar] [CrossRef]
- Das, K.M.; Ramgopal, M.; Guha, A.; Katu, Y.A. Performance of a refrigeration system with a two-phase CO2-based natural circulation loop for cold storage applications. Therm. Sci. Eng. Prog. 2025, 58, 103184. [Google Scholar] [CrossRef]
- Dong, H.; Ruan, L. Thermal-hydraulic characteristics of the natural circulation evaporative cooling system of hydro-generator stator busbar under different loop heights. J. Therm. Sci. Technol. 2019, 14, JTST0017. [Google Scholar] [CrossRef]
- Weyl, P.K. On the change in electrical conductance of seawater with temperature1. Limnol. Oceanogr. 1964, 9, 75–78. [Google Scholar] [CrossRef]
- Millero, F.J. Chemical Oceanography; CRC: Boca Raton, FL, USA; Taylor and Francis: Abingdon, UK, 2016. [Google Scholar] [CrossRef]
0 | / | 3.66 |
0.05 | 17.46 | 4.06 |
0.10 | 11.56 | 4.11 |
0.25 | 7.37 | 4.23 |
0.5 | 5.74 | 4.43 |
1.00 | 4.86 | 4.86 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Dong, H.; Ma, B.; Wang, J.; Xue, J.; Chen, X.; Bai, J.; Wang, H. Self-Driven Cycle and Thermal Characteristics of Seawater Battery System with a Preheater. Energies 2025, 18, 4261. https://doi.org/10.3390/en18164261
Dong H, Ma B, Wang J, Xue J, Chen X, Bai J, Wang H. Self-Driven Cycle and Thermal Characteristics of Seawater Battery System with a Preheater. Energies. 2025; 18(16):4261. https://doi.org/10.3390/en18164261
Chicago/Turabian StyleDong, Haihong, Bendong Ma, Jianchao Wang, Jingdan Xue, Xingru Chen, Jie Bai, and Housheng Wang. 2025. "Self-Driven Cycle and Thermal Characteristics of Seawater Battery System with a Preheater" Energies 18, no. 16: 4261. https://doi.org/10.3390/en18164261
APA StyleDong, H., Ma, B., Wang, J., Xue, J., Chen, X., Bai, J., & Wang, H. (2025). Self-Driven Cycle and Thermal Characteristics of Seawater Battery System with a Preheater. Energies, 18(16), 4261. https://doi.org/10.3390/en18164261