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20.12.2024 | Vision and Sensors

Study on The Cooling Performance By Cooling Air Channel Design For Air-Cooled Hev Battery Pack

verfasst von: Geon Hui Lee, Dae Yeon Yeom, Geon Ho Kim, Siyoul Jang

Erschienen in: International Journal of Automotive Technology

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Abstract

In this study, a cooling structure is designed that can improve the cooling efficiency of an air-cooled battery pack, which is an important component of hybrid electric vehicle powertrains. U-type air-cooled battery packs, which represent the most efficient structure for the distribution of cooling air flowing from the top plenum to lower plenum of battery packs, are considered herein. Based on the structure of U-type air-cooled battery packs, a cooling air channel that induces a smooth flow of cooling air between battery cells is established. A computational study of the optimized design of the air channels between cells is conducted to arrive at the design that mostly averages the inter-cell temperature of the battery pack for the set cooling air passage, minimizes the maximum cell temperature, and minimizes pressure loss. Computational fluid dynamics (CFD) analysis results present an optimal design of the cooling air passage of a battery pack based on the area of the same cooling air flow between battery cells in an air-cooled battery pack with the improved temperature uniformity by 8%, and the minimized pressure loss by 15%.

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Literatur
Zurück zum Zitat Afzal, A., Mohammed Samee, A. D., Abdul Razak, R. K., & Ramis, M. K. (2021). Thermal management of modern electric vehicle battery systems (MEVBS). Journal of Thermal Analysis and Calorimetry, 144, 1271–1285.CrossRef Afzal, A., Mohammed Samee, A. D., Abdul Razak, R. K., & Ramis, M. K. (2021). Thermal management of modern electric vehicle battery systems (MEVBS). Journal of Thermal Analysis and Calorimetry, 144, 1271–1285.CrossRef
Zurück zum Zitat Carello, M., Bovio, M., Ricci, F., Dall’Acqua, S., Strano, D. I., & Rizzello, A. (2024). CFD simulation and modelling of a battery thermal management system: comparison between indirect and immersion cooling. SAE International Journal of Advances and Current Practical in Mobility., 6(1), 545–558. Carello, M., Bovio, M., Ricci, F., Dall’Acqua, S., Strano, D. I., & Rizzello, A. (2024). CFD simulation and modelling of a battery thermal management system: comparison between indirect and immersion cooling. SAE International Journal of Advances and Current Practical in Mobility., 6(1), 545–558.
Zurück zum Zitat Chen, K., Chen, Y., She, Y., Song, M., Wang, S., & Chen, L. (2020). Construction of effective symmetrical air-cooled system for battery thermal management. Applied Thermal Engineering, 166, 114679.CrossRef Chen, K., Chen, Y., She, Y., Song, M., Wang, S., & Chen, L. (2020). Construction of effective symmetrical air-cooled system for battery thermal management. Applied Thermal Engineering, 166, 114679.CrossRef
Zurück zum Zitat Chen, P., Goa, L., Li, W., Zhao, J., Garg, A., & Panda, B. (2024). A Topology optimization-based-novel design and comprehensive thermal analysis of a cylindrical battery liquid cooling plate. Applied Thermal Engineering, 252, 123747.CrossRef Chen, P., Goa, L., Li, W., Zhao, J., Garg, A., & Panda, B. (2024). A Topology optimization-based-novel design and comprehensive thermal analysis of a cylindrical battery liquid cooling plate. Applied Thermal Engineering, 252, 123747.CrossRef
Zurück zum Zitat Dan, D., Zhao, Y., Wei, M., & Wang, X. (2023). Review of thermal management technology for electric vehicles. Energies, 16, 4693.CrossRef Dan, D., Zhao, Y., Wei, M., & Wang, X. (2023). Review of thermal management technology for electric vehicles. Energies, 16, 4693.CrossRef
Zurück zum Zitat De Gennaro, M., Paffumi, E., Martini, G., Manfredi, U., Scholz, H., Lacher, H., Kuehnelt, H., & Simic, D. (2014). Experimental investigation of the energy efficiency of an electric vehicle in different driving conditions. SAE Technical Paper, 01, 1817. De Gennaro, M., Paffumi, E., Martini, G., Manfredi, U., Scholz, H., Lacher, H., Kuehnelt, H., & Simic, D. (2014). Experimental investigation of the energy efficiency of an electric vehicle in different driving conditions. SAE Technical Paper, 01, 1817.
Zurück zum Zitat Dubey, P., Pulugundla, G., & Srouji, A. K. (2021). Direct Comparison of immersion and cold-plate based cooling for automotive li-ion battery modules. Energies, 14, 1259.CrossRef Dubey, P., Pulugundla, G., & Srouji, A. K. (2021). Direct Comparison of immersion and cold-plate based cooling for automotive li-ion battery modules. Energies, 14, 1259.CrossRef
Zurück zum Zitat Gharehghani, A., Rabiei, M., Mehranfar, S., Saeedipour, S., Andwari, A. M., García, A., & Reche, C. M. (2024b). Progress in Battery thermal management systems technologies for electric vehicles. Renewable and Sustainable Energy Reviews, 202, 114654.CrossRef Gharehghani, A., Rabiei, M., Mehranfar, S., Saeedipour, S., Andwari, A. M., García, A., & Reche, C. M. (2024b). Progress in Battery thermal management systems technologies for electric vehicles. Renewable and Sustainable Energy Reviews, 202, 114654.CrossRef
Zurück zum Zitat Gong, Z., Sun, J., Wang, H., Han, G., Liu, H., & Qin, B. (2024). Influence of different causes on thermal runaway characteristic of LiFePO 4 battery. Journal of Energy Storage, 93, 112411.CrossRef Gong, Z., Sun, J., Wang, H., Han, G., Liu, H., & Qin, B. (2024). Influence of different causes on thermal runaway characteristic of LiFePO 4 battery. Journal of Energy Storage, 93, 112411.CrossRef
Zurück zum Zitat Hasan, H. A., Togun, H., Mohammed, H. I., Abed, A. M., & Homod, R. Z. (2023). CFD simulation of effect spacing between lithium-ion batteries by using flow air inside the cooling pack. Journal of Energy Storage, 72, 108631.CrossRef Hasan, H. A., Togun, H., Mohammed, H. I., Abed, A. M., & Homod, R. Z. (2023). CFD simulation of effect spacing between lithium-ion batteries by using flow air inside the cooling pack. Journal of Energy Storage, 72, 108631.CrossRef
Zurück zum Zitat He, D., Wang, J., Peng, Y., Li, B., Feng, C., & Shen, L. (2024). Research advances on thermal runaway mechanism of lithium-ion batteries and safety improvement. Sustainable Materials and Technologies, 41, e01017.CrossRef He, D., Wang, J., Peng, Y., Li, B., Feng, C., & Shen, L. (2024). Research advances on thermal runaway mechanism of lithium-ion batteries and safety improvement. Sustainable Materials and Technologies, 41, e01017.CrossRef
Zurück zum Zitat Hong, S., Kyoung, S., Sung, W., Lee, D., Choi, K., Park, M., Seo, H., Park, S., & Jung, Y. (2022). Development of vehicle thermal management model for improving the energy efficiency of electric vehicle. SAE Technical Paper, 01, 0201. Hong, S., Kyoung, S., Sung, W., Lee, D., Choi, K., Park, M., Seo, H., Park, S., & Jung, Y. (2022). Development of vehicle thermal management model for improving the energy efficiency of electric vehicle. SAE Technical Paper, 01, 0201.
Zurück zum Zitat Janarthanam, S., Paramasivam, S., Maguire, P., Gebbie, J., & Hughes, D. (2017). HEV battery pack thermal management design and packaging solutions. SAE International Journal of Engines, 10(3), 785–789.CrossRef Janarthanam, S., Paramasivam, S., Maguire, P., Gebbie, J., & Hughes, D. (2017). HEV battery pack thermal management design and packaging solutions. SAE International Journal of Engines, 10(3), 785–789.CrossRef
Zurück zum Zitat Lee, G., & Jang, S. (2023). A study on the cooling flow performance of an air-cooled battery pack by space shape of plenum. Transactions of the Korean Society of Automotive Engineers, 31(5), 333–344.CrossRef Lee, G., & Jang, S. (2023). A study on the cooling flow performance of an air-cooled battery pack by space shape of plenum. Transactions of the Korean Society of Automotive Engineers, 31(5), 333–344.CrossRef
Zurück zum Zitat Li, Z., Gao, M., Zhao, X., Cai, X., & Zhang, Y. (2024). Heat generation effect and failure mechanism of pouch-type lithium-ion battery under over-discharge for electric vehicle. Journal of Energy Storage, 76, 109759.CrossRef Li, Z., Gao, M., Zhao, X., Cai, X., & Zhang, Y. (2024). Heat generation effect and failure mechanism of pouch-type lithium-ion battery under over-discharge for electric vehicle. Journal of Energy Storage, 76, 109759.CrossRef
Zurück zum Zitat Möller, T., Stahlbaum, R., Sereecharoenkij, C., & Radespiel, R. (2009). Development of a numerical simulation tool for the cooling of batteries. SAE International Journal of Passenger Cars Mechnical System, 1(1), 156–164.CrossRef Möller, T., Stahlbaum, R., Sereecharoenkij, C., & Radespiel, R. (2009). Development of a numerical simulation tool for the cooling of batteries. SAE International Journal of Passenger Cars Mechnical System, 1(1), 156–164.CrossRef
Zurück zum Zitat Nie, B., Dong, Y., & Chang, L. (2024). The evolution of thermal runaway parameters of lithium-ion batteries under different abuse conditions: a review. Journal of Energy Storage., 96, 112624.CrossRef Nie, B., Dong, Y., & Chang, L. (2024). The evolution of thermal runaway parameters of lithium-ion batteries under different abuse conditions: a review. Journal of Energy Storage., 96, 112624.CrossRef
Zurück zum Zitat Nuthi, B. K., Vijayaraghavan, S., & Govindaraj, D. (2019). Numerical simulation of battery thermal management systems in electric vehicles. SAE Technical Paper, 28, 2481. Nuthi, B. K., Vijayaraghavan, S., & Govindaraj, D. (2019). Numerical simulation of battery thermal management systems in electric vehicles. SAE Technical Paper, 28, 2481.
Zurück zum Zitat Park, S., Yu, J. K., Lee, H., & Choi, H. K. (2023). Flow study on lithium-ion battery pack with air cooling. Journal of Mechanical Science and Technology, 37(9), 4631–4638.CrossRef Park, S., Yu, J. K., Lee, H., & Choi, H. K. (2023). Flow study on lithium-ion battery pack with air cooling. Journal of Mechanical Science and Technology, 37(9), 4631–4638.CrossRef
Zurück zum Zitat Rajadurai, D., Benny, B., & Bala, H. (2021). Thermal management of battery cooling system. SAE Technical Paper, 26, 0161. Rajadurai, D., Benny, B., & Bala, H. (2021). Thermal management of battery cooling system. SAE Technical Paper, 26, 0161.
Zurück zum Zitat Sahin, R. C., Gocmen, S., & Cetkin, E. (2022). Thermal management system for air-cooled battery packs with flow-disturbing structures. Journal of Power Sources, 551, 232214.CrossRef Sahin, R. C., Gocmen, S., & Cetkin, E. (2022). Thermal management system for air-cooled battery packs with flow-disturbing structures. Journal of Power Sources, 551, 232214.CrossRef
Zurück zum Zitat Shukuya, K., Misu, M., Minekawa, H., Yamada, I., & Tanigawa, Y. (2002). A new battery system for the estima hybrid minivan. SAE Technical Paper, 01, 1090. Shukuya, K., Misu, M., Minekawa, H., Yamada, I., & Tanigawa, Y. (2002). A new battery system for the estima hybrid minivan. SAE Technical Paper, 01, 1090.
Zurück zum Zitat Shun-Bo, Z., Xuan, H., Nan-Chong, L., Yan-Jie, S., & Qiang, G. (2023). Improving the air-cooling performance for lithium-ion battery packs by changing the air flow pattern. Applied Thermal Engineering, 221, 119825.CrossRef Shun-Bo, Z., Xuan, H., Nan-Chong, L., Yan-Jie, S., & Qiang, G. (2023). Improving the air-cooling performance for lithium-ion battery packs by changing the air flow pattern. Applied Thermal Engineering, 221, 119825.CrossRef
Zurück zum Zitat Sun, H., Tossan, B., & Brouns, D. (2011). Thermal behavior study on hev air-cooled battery pack. SAE Technical Paper, 01, 1368. Sun, H., Tossan, B., & Brouns, D. (2011). Thermal behavior study on hev air-cooled battery pack. SAE Technical Paper, 01, 1368.
Zurück zum Zitat Suo, Y., Tang, C., & Yang, H. (2023). Optimization design of the forced air-cooled battery thermal management system with a stepped divergence plenum. Journal of Energy Storage, 73, 108904.CrossRef Suo, Y., Tang, C., & Yang, H. (2023). Optimization design of the forced air-cooled battery thermal management system with a stepped divergence plenum. Journal of Energy Storage, 73, 108904.CrossRef
Zurück zum Zitat Thawkar, V., & Dhoble, A. S. (2023). A Review of Thermal management methods for electric vehicle batteries based on heat pipes and PCM. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 45, 90.CrossRef Thawkar, V., & Dhoble, A. S. (2023). A Review of Thermal management methods for electric vehicle batteries based on heat pipes and PCM. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 45, 90.CrossRef
Zurück zum Zitat Verma, S. P., & Saraswati, S. (2024). Comprehensive analysis of airflow stream interaction, space utilization and optimization of an aligned configured air-cooled li-ion battery pack. International Journal of Heat and Mass Transfer, 227, 125550.CrossRef Verma, S. P., & Saraswati, S. (2024). Comprehensive analysis of airflow stream interaction, space utilization and optimization of an aligned configured air-cooled li-ion battery pack. International Journal of Heat and Mass Transfer, 227, 125550.CrossRef
Zurück zum Zitat Wang, A., Li, Q., Cao, F., & Hu, D. (2024). Driving range evaluation of electric vehicle with transcritical CO2 thermal management system under different battery temperature controls. Journal of Cleaner Production, 434, 140208.CrossRef Wang, A., Li, Q., Cao, F., & Hu, D. (2024). Driving range evaluation of electric vehicle with transcritical CO2 thermal management system under different battery temperature controls. Journal of Cleaner Production, 434, 140208.CrossRef
Zurück zum Zitat Widyantara, R. D., Naufal, M. A., Sambegoro, P. L., Nurprasetio, I. P., Triawan, F., Djamari, D. W., Nandiyanto, A. B. D., Budiman, B. A., & Aziz, M. (2021). Low-cost air-cooling system optimization on battery pack of electric vehicle. Energies, 14, 7954.CrossRef Widyantara, R. D., Naufal, M. A., Sambegoro, P. L., Nurprasetio, I. P., Triawan, F., Djamari, D. W., Nandiyanto, A. B. D., Budiman, B. A., & Aziz, M. (2021). Low-cost air-cooling system optimization on battery pack of electric vehicle. Energies, 14, 7954.CrossRef
Zurück zum Zitat Wu, X., Lu, Y., Ouyang, H., Ren, X., Yang, J., Guo, H., Han, X., Zhang, C., & Wu, Y. (2024). Theoretical and experimental investigations on liquid immersion cooling battery packs for electric vehicles based on analysis of battery heat generation characteristics. Energy Conversion and Management, 310, 118478.CrossRef Wu, X., Lu, Y., Ouyang, H., Ren, X., Yang, J., Guo, H., Han, X., Zhang, C., & Wu, Y. (2024). Theoretical and experimental investigations on liquid immersion cooling battery packs for electric vehicles based on analysis of battery heat generation characteristics. Energy Conversion and Management, 310, 118478.CrossRef
Zurück zum Zitat E, J., Xiao, H., Tian, S., Huang, Y. (2024). A comprehensive review on thermal runaway model of a lithium-ion battery: mechanism, thermal, mechanical, propagation. Gas Venting and Combustion. Renewable Energy, 229, 120762.CrossRef E, J., Xiao, H., Tian, S., Huang, Y. (2024). A comprehensive review on thermal runaway model of a lithium-ion battery: mechanism, thermal, mechanical, propagation. Gas Venting and Combustion. Renewable Energy, 229, 120762.CrossRef
Zurück zum Zitat Yu, K., Yang, X., Cheng, Y., & Li, C. (2014). Thermal analysis and two-directional air flow thermal management for lithium-ion battery pack. Journal of Power Sources, 270, 193–200.CrossRef Yu, K., Yang, X., Cheng, Y., & Li, C. (2014). Thermal analysis and two-directional air flow thermal management for lithium-ion battery pack. Journal of Power Sources, 270, 193–200.CrossRef
Zurück zum Zitat Yu, T., Li, X., Wang, B., & Shi, W. (2024). Quantitative analysis of factors contributing to driving range degradation of battery electric vehicles. Applied Thermal Engineering, 250, 123520.CrossRef Yu, T., Li, X., Wang, B., & Shi, W. (2024). Quantitative analysis of factors contributing to driving range degradation of battery electric vehicles. Applied Thermal Engineering, 250, 123520.CrossRef
Zurück zum Zitat Zhan, S., Chen, Y., Yin, Y., Li, Z., & Yu, C. (2024). Examining the influence of number of inlets and outlets on the topology optimization design of battery liquid cooling plate. Applied Thermal Engineering, 252, 123691.CrossRef Zhan, S., Chen, Y., Yin, Y., Li, Z., & Yu, C. (2024). Examining the influence of number of inlets and outlets on the topology optimization design of battery liquid cooling plate. Applied Thermal Engineering, 252, 123691.CrossRef
Zurück zum Zitat Zhang, S. B., Nie, F., Cheng, J. P., Yang, H., & Gao, Q. (2024). Optimizing the air flow pattern to improve the performance of the air-cooling lithium-ion battery pack. Applied Thermal Engineering, 236, 121486.CrossRef Zhang, S. B., Nie, F., Cheng, J. P., Yang, H., & Gao, Q. (2024). Optimizing the air flow pattern to improve the performance of the air-cooling lithium-ion battery pack. Applied Thermal Engineering, 236, 121486.CrossRef
Zurück zum Zitat Zhao, G., Wang, X., Negnevitsky, M., & Zhang, H. (2021). A Review of air-cooling battery thermal management systems for electric and hybrid electric vehicles. Journal of Power Sources, 501, 230001.CrossRef Zhao, G., Wang, X., Negnevitsky, M., & Zhang, H. (2021). A Review of air-cooling battery thermal management systems for electric and hybrid electric vehicles. Journal of Power Sources, 501, 230001.CrossRef
Metadaten
Titel
Study on The Cooling Performance By Cooling Air Channel Design For Air-Cooled Hev Battery Pack
verfasst von
Geon Hui Lee
Dae Yeon Yeom
Geon Ho Kim
Siyoul Jang
Publikationsdatum
20.12.2024
Verlag
The Korean Society of Automotive Engineers
Erschienen in
International Journal of Automotive Technology
Print ISSN: 1229-9138
Elektronische ISSN: 1976-3832
DOI
https://doi.org/10.1007/s12239-024-00180-x