Spray cooling for enhancing cooling performance and reducing power consumption of radiator in hydrogen fuel cell system

IF 5.1 3区 工程技术 Q2 ENERGY & FUELS Energy Reports Pub Date : 2025-06-01 Epub Date: 2025-02-03 DOI:10.1016/j.egyr.2025.01.068
Bo Shi , Qiguang Xie , Feng Zhou , Jiawang Zhou , Wenju Ma , Lihui Feng , Jinxiao Zhao , Baifeng Ji , Kejun Wei , Jincheng Wang , Zufei Guo , Yiyuan Huang , Qizhong Li
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Abstract

During the development of hydrogen fuel cell systems, with the augmentation of power, conventional air-cooling systems, which are frequently employed in portable scenarios, encounter difficulties in maintaining the balance between radiator heat dissipation and power consumption. In contrast, liquid-cooling systems are widely adopted in high-power applications. In this regard, aiming to address the heat dissipation problem and make use of the wastewater from the stack tailpipe, a novel spray cooling system integrated with the traditional air-cooling for the radiator of hydrogen fuel cell systems is put forward. Through experimental investigations based on heat transfer theory and the design principles of fuel cell systems, it is discovered that under specific nozzle apertures and spray water pressures, the heat dissipation rate can be enhanced by 40 % and 30 % respectively. With particular radiator internal water flow rates and fan speeds, the heat dissipation rate can be increased by 30 % and 108 % respectively. And the spray angle of 60 ° is the best angle. In contrast to the conventional air-cooling system, the spray-air cooling system exhibits a heat dissipation rate that is approximately 50 % higher. Experimental analyses demonstrate that the new system effectively harnesses water resources and enhances the heat dissipation performance of the radiator, thereby providing a technical reference for the application of spray cooling in the radiators of hydrogen fuel cell systems.
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喷雾冷却是提高氢燃料电池系统散热性能和降低散热器功耗的有效方法
在氢燃料电池系统的发展过程中,随着功率的增加,传统的风冷系统经常用于便携式场景,在保持散热器散热和功耗之间的平衡方面遇到困难。相比之下,液体冷却系统在大功率应用中被广泛采用。为此,针对氢燃料电池散热器的散热问题,提出了一种与传统空冷相结合的新型氢燃料电池散热器喷雾冷却系统。通过基于传热理论和燃料电池系统设计原理的实验研究,发现在特定喷嘴孔径和喷雾水压力下,其散热率可分别提高40% %和30% %。在特定的散热器内部水流量和风扇转速下,散热率可分别提高30 %和108 %。喷淋角度为60°为最佳角度。与传统的空气冷却系统相比,喷雾-空气冷却系统的散热率大约高出50% %。实验分析表明,该系统有效地利用了水资源,提高了散热器的散热性能,为喷雾冷却在氢燃料电池系统散热器中的应用提供了技术参考。
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来源期刊
Energy Reports
Energy Reports Energy-General Energy
CiteScore
8.20
自引率
13.50%
发文量
2608
审稿时长
38 days
期刊介绍: Energy Reports is a new online multidisciplinary open access journal which focuses on publishing new research in the area of Energy with a rapid review and publication time. Energy Reports will be open to direct submissions and also to submissions from other Elsevier Energy journals, whose Editors have determined that Energy Reports would be a better fit.
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