汽车安全与节能学报 ›› 2024, Vol. 15 ›› Issue (3): 351-359.DOI: 10.3969/j.issn.1674-8484.2024.03.008
朱鑫宁1(
), 王茜1, 刘荣康1, 朱思明1, 张剑波2, 周伟1,*(
)
收稿日期:2023-09-15
修回日期:2023-12-21
出版日期:2024-06-30
发布日期:2024-07-01
通讯作者:
*周伟,教授。E-mail:作者简介:朱鑫宁(1992—),男(汉),广西,博士研究生。E-mail:zhuxinning1228@163.com。
基金资助:
ZHU Xinning1(
), WANG Xi1, LIU Rongkang1, ZHU Siming1, ZHANG Jianbo2, ZHOU Wei1,*(
)
Received:2023-09-15
Revised:2023-12-21
Online:2024-06-30
Published:2024-07-01
摘要:
为了提高质子交换膜燃料电池(PEMFC)的膜电极的传质性能与电池的功率密度,设计了一种以圆弧凹面作为强化传质结构的随行波流场板。结合铣削工艺,实现了随行波流场结构的制造。采用计算流体动力学软件,建立包括随行波流场与膜电极在内的燃料电池三维模型。实验验证了该模型的准确性。探索了强化传质结构对电池内部速度场、浓度场及电场的分布规律,分析了电池性能的提升效果。结果表明:与流道深宽0.6 mm×0.8 mm的常规流场相比,该文的随行波流场的平均流速提升了27.7%,压损降低了19.2%,双极板—气体扩散层界面的氧气含量提升了1.44%,出口的排水速率增大16.7%,功率密度提升了8.6%。
中图分类号:
朱鑫宁, 王茜, 刘荣康, 朱思明, 张剑波, 周伟. 质子交换膜燃料电池随行波流场设计与传质特性[J]. 汽车安全与节能学报, 2024, 15(3): 351-359.
ZHU Xinning, WANG Xi, LIU Rongkang, ZHU Siming, ZHANG Jianbo, ZHOU Wei. Structural design and mass-transfer performances of a proton exchange membrane fuel cell with a traveling-wave flow-field[J]. Journal of Automotive Safety and Energy, 2024, 15(3): 351-359.
| 参数 | 随行波流场 | 常规流场 |
|---|---|---|
| 流道深/ mm | 1.0 | 0.6 |
| 流道宽/ mm | 1.0 | 0.8 |
| 流道长/ mm | 48.0 | 48.0 |
| 肋宽/ mm | 1.0 | 0.9 |
| 流场长/ mm | 50.0 | 50.0 |
| 流场宽/ mm | 50.0 | 50.0 |
| 活化面积/ mm2 | 2 500 | 2 500 |
| 气体扩散层厚/ mm | 0.2 | 0.2 |
| 催化层厚/ μm | 1.0 | 1.0 |
| PEM 厚/ μm | 3.0 | 3.0 |
| 模型1 / 万 | 160 | 487.5 |
| 模型2 / 万 | 400 | 975.0 |
| 参数 | 随行波流场 | 常规流场 |
|---|---|---|
| 流道深/ mm | 1.0 | 0.6 |
| 流道宽/ mm | 1.0 | 0.8 |
| 流道长/ mm | 48.0 | 48.0 |
| 肋宽/ mm | 1.0 | 0.9 |
| 流场长/ mm | 50.0 | 50.0 |
| 流场宽/ mm | 50.0 | 50.0 |
| 活化面积/ mm2 | 2 500 | 2 500 |
| 气体扩散层厚/ mm | 0.2 | 0.2 |
| 催化层厚/ μm | 1.0 | 1.0 |
| PEM 厚/ μm | 3.0 | 3.0 |
| 模型1 / 万 | 160 | 487.5 |
| 模型2 / 万 | 400 | 975.0 |
| 阳极参考交换电流密度 | 10 kA / m2 | 氢气定压比热容 | 7.24 kJ / (kg·K) |
| 氢气参考摩尔浓度 | 56.4 mol / m3 | 氧气定压比热容 | 0.918 kJ / (kg·K) |
| 氧气参考摩尔浓度 | 3.39 mol / m3 | 水蒸气定压比热容 | 2.078 kJ / (kg·K) |
| 接触角 | 110° | 液态水导热系数 | 606 mW / (Km) |
| 扩散层孔隙率 | 0.6 | 氢气导热系数 | 180.5 mW / (Km) |
| 扩散层渗透系数 | 3.0 μm2 | 氧气导热系数 | 26.3 mW / (Km) |
| 催化层渗透系数 | 2.0 μm2 | 水蒸气导热系数 | 24 mW / (Km) |
| 阴极传递因数 | 2.0 | 质子交换膜导热系数 | 320 mW / (Km) |
| 阳极传递因数 | 1.0 | 催化层导热系数 | 1.5 W / (Km) |
| 质子传导因数 | 1.0 | 气体扩散层导热系数 | 2.8 W / (Km) |
| 氢气扩散系数 | 1.10 cm2·s | 集流板导热系数 | 380 W / (Km)c |
| 氧气扩散系数 | 0.289 cm2·s | 气体扩散层电导系数 | 98 S / m |
| 水蒸气扩散系数 | 0.735 cm2·s | 催化层电导系数 | 920 S / m |
| 其他气体扩散系数 | 0.110 cm2·s | 交换膜电导系数 | 8 S / m |
| 阳极参考交换电流密度 | 10 kA / m2 | 氢气定压比热容 | 7.24 kJ / (kg·K) |
| 氢气参考摩尔浓度 | 56.4 mol / m3 | 氧气定压比热容 | 0.918 kJ / (kg·K) |
| 氧气参考摩尔浓度 | 3.39 mol / m3 | 水蒸气定压比热容 | 2.078 kJ / (kg·K) |
| 接触角 | 110° | 液态水导热系数 | 606 mW / (Km) |
| 扩散层孔隙率 | 0.6 | 氢气导热系数 | 180.5 mW / (Km) |
| 扩散层渗透系数 | 3.0 μm2 | 氧气导热系数 | 26.3 mW / (Km) |
| 催化层渗透系数 | 2.0 μm2 | 水蒸气导热系数 | 24 mW / (Km) |
| 阴极传递因数 | 2.0 | 质子交换膜导热系数 | 320 mW / (Km) |
| 阳极传递因数 | 1.0 | 催化层导热系数 | 1.5 W / (Km) |
| 质子传导因数 | 1.0 | 气体扩散层导热系数 | 2.8 W / (Km) |
| 氢气扩散系数 | 1.10 cm2·s | 集流板导热系数 | 380 W / (Km)c |
| 氧气扩散系数 | 0.289 cm2·s | 气体扩散层电导系数 | 98 S / m |
| 水蒸气扩散系数 | 0.735 cm2·s | 催化层电导系数 | 920 S / m |
| 其他气体扩散系数 | 0.110 cm2·s | 交换膜电导系数 | 8 S / m |
| [1] |
李政翰, 涂正凯. 质子交换膜燃料电池仿真模型研究进展[J]. 化工进展, 2022, 41(10): 5272-5296.
doi: 10.16085/j.issn.1000-6613.2021-2604 |
| LI Zhenghan, TU Zhengkai. Research progress of simulation models of proton exchange membrane fuel cell[J]. Chem Indu Eng Prog, 2022, 41(10): 5272-5296. (in Chinese) | |
| [2] |
LI Yuehua, PEI Pucheng, MA Ze, et al. Characteristic analysis in lowering current density based on pressure drop for avoiding flooding in proton exchange membrane fuel cell[J]. Appl Energ, 2019, 248: 321-329.
doi: 10.1016/j.apenergy.2019.04.140 |
| [3] | XING Lu, CHANE Huawei, ZHU Runqi, et al. Thermal analysis and management of proton exchange membrane fuel cell stacks for automotive vehicle[J]. Int J Hydr Energ, 2021, 46(64): 32665-32675. |
| [4] | Pourrahmani H, Gay M, Herle J V. Electric vehicle charging station using fuel cell technology: Two different scenarios and thermodynamic analysis[J]. Energy Rep, 2021, 7: 6955-6972. |
| [5] | OU Kai, YUAN Weiwei, KIM Youngbae. Development of optimal energy management for a residential fuel cell hybrid power system with heat recovery[J]. Energy, 2021, 219: Paper No 119499. |
| [6] |
周伟, 朱鑫宁, 连云崧, 等. 质子交换膜燃料电池的三维流场技术研究进展[J]. 机械工程学报, 2021, 57(8): 2-12.
doi: 10.3901/JME.2021.08.002 |
|
ZHOU Wei, ZHU Xinning, LIAN Yunsong, et al. Research progress on three-dimensional flow field technology of proton exchange membrane fuel cell[J]. J Mech Eng, 2021, 57(8): 2-12. (in Chinese)
doi: 10.3901/JME.2021.08.002 |
|
| [7] | SONG Yuxi, ZHANG Caizhi, LING Chunyu, et al. Review on current research of materials, fabrication and application for bipolar plate in proton exchange membrane fuel cell[J]. Int’l J Hydr Energ, 2020, 45(54): 29832-29847. |
| [8] | 刘英杰, 陈奔. 质子交换膜燃料电池流场强化传质研究进展[J]. 汽车工程, 2021, 43(6): 799-807+814. |
| LIU Yingjie, CHEN Ben. Research progress in mass transfer enhancement of flow field in proton exchange membrane fuel cell[J]. Autom Engineering, 2021, 43(6): 799-807+814. (in Chinese) | |
| [9] | 汪龙飞, 杨侠, 严智远, 等. 流场结构对氢燃料电池性能的影响[J]. 武汉工程大学学报, 2022, 44(4): 445-449. |
| WANG Longfei, YANG Xia, YAN Zhiyuan, et al. Effect of flow field structure on hydrogen fuel cell performance[J]. J Wuhan Inst of Tech, 2022, 44(4): 445-449. (in Chinese) | |
| [10] | 朱万超, 郑明刚. 质子交换膜燃料电池渐变蛇形流场的性能研究[J]. 电源技术, 2020, 44(8): 1123-1125+1198. |
| ZHU Wanchao, ZHENG Minggang. Performance study of gradual serpentine flow fields in proton exchange membrane fuel cell[J]. Chin J Power Sour, 2020, 44(8): 1123-1125+1198. (in Chinese) | |
| [11] | 陈士忠, 夏忠贤, 王艺澄, 等. 蛇形流场PEMFC性能影响因素的数值模拟[J]. 电源技术, 2017, 41(2): 230-233. |
| CHEN Shizhong, XIA Zhongxian, WANG Yicheng, et al. Numerical simulation of influencing factors on performance of PEMFC with serpentine flow field[J]. Chin J Power Sour, 2017, 41(2): 230-233. (in Chinese) | |
| [12] | 陈曦, 余正锟, 周浩伟, 等. 质子交换膜燃料电池波浪形平行流场研究[J]. 工程热物理学报, 2021, 42(04): 1021-1025. |
| CHEN Xi, YU Zhengkun, ZHOU Haowei, et al. Study on wave parallel flow field of PEMFC[J]. J Engi Thermophysi, 2021, 42(4): 1021-1025. (in Chinese) | |
| [13] | LIU Haichao, YANG Weimin, TIAN Jing, et al. Numerical analysis of parallel flow fields improved by micro-distributor in proton exchange membrane fuel cells[J]. Energ Convers Manage, 2018, 176: 99-109. |
| [14] | GUO Hang, WANG Maohai, LIU Jiaxing, et al. Temperature distribution on anodic surface of membrane electrode assembly in proton exchange membrane fuel cell with interdigitated flow bed[J]. J Power Sources, 2015, 273: 775-783. |
| [15] | ZHANG Guangsheng, GUO Liejin, MA Bin, et al. Comparison of current distributions in proton exchange membrane fuel cells with interdigitated and serpentine flow fields[J]. J Power Sources, 2009, 188(1): 213-219. |
| [16] | Najmi A U H, 刘智, 杜青, 等. 不同流场下进气对质子交换膜燃料电池性能的影响[J]. 工程热物理学报, 2021, 42(2): 413-417. |
| Najmi A U H, LIU Zhi, DU Qing, et al. Effect of inlet gases on performance of PEMFC using different flow fields[J]. J Eng Thermophysics, 2021, 42(2): 413-417. (in Chinese) | |
| [17] | 孟庆然, 陈海伦, 田爱华, 等. 流场沟槽对质子交换膜燃料电池性能的影响[J]. 电源技术, 2021, 45(1): 22-26. |
| MENG Qiangran, CHEN Hailun, TIAN Aihua, et al. Effect of flow field grooves on performance of proton exchange membrane fuel cells[J]. Chin J Power Source, 2021, 45(1): 22-26. (in Chinese) | |
| [18] | 刘永峰, 张璐, 裴普成, 等. 相对湿度对 PEMFC 加载过程中动态响应的影响分析[J]. 汽车安全与节能学报, 2023, 14(1): 89-97. |
| LIU Yongfeng, ZHANG Lu, PEI Pucheng, et al. Analysis of the influences on dynamic response of relative humidity to PEMFC during loading[J]. J Auto Safe Energ, 2023, 14(1): 89-97. (in Chinese) | |
| [19] | WANG Bowen, CHEN Wenmiao. PAN Fengwen, et al. A dot matrix and sloping baffle cathode flow field of proton exchange membrane fuel cell[J]. J Power Sources, 2019, 434: Paper No 226741. |
| [20] | HE Liang, HOU Ming, GAO Yanyan, et al. Experimental study of the S-shaped flow fields in proton exchange membrane fuel cells[J]. Energ Convers Manage, 2020, 223: Paper No 113292. |
| [21] | LIU Qingshan, LAN Fengchong, CHEN Jiqing, et al. Flow field structure design modification with helical baffle for proton exchange membrane fuel cell[J]. Energ Convers Manage, 2022, 269: Paper No 116175. |
| [22] | Konno N, Mizuno S, Nakaji H, et al. Development of Compact and High-Performance Fuel Cell Stack[J]. SAE Int J Altern Pow, 2015, 4(1): 123-129. |
| [23] | Awin Y, Dukhan N. Experimental performance assessment of metal-foam flow fields for proton exchange membrane fuel cells[J]. Appl Energ, 2019, 252: Paper No 113458. |
| [24] | XING Lei, DU Shangfeng, CHEN Rui, et al. Anode partial flooding modelling of proton exchange membrane fuel cells: Model development and validation[J]. Energy, 2016, 96: 80-95. |
| [25] | Kazem M, Babare J, Ramin J, et al. A numerical model for estimation of water droplet size in the anode channel of a proton exchange membrane fuel cell[J]. Journal of Energy Storage, 2019, 26: Paper No 101021. |
| [26] | Hsieh S, YANG Shenghuang, KUO Jennkun, et al. Study of operational parameters on the performance of micro PEMFCs with different flow fields[J]. Energ Convers Manage, 2006, 47(13-14): 1868-1878. |
| [27] | SHEN Jun, TU Zhengkai, CHAN Siewhwa. Evaluation criterion of different flow field patterns in a proton exchange membrane fuel cell[J]. Energ Convers Manage, 2020, 213: Paper No 112841. |
| [28] | CHEN Hao, GUO Hang, YE Fang, et al. An experimental study of cell performance and pressure drop of proton exchange membrane fuel cells with baffled flow channels[J]. J Power Sources, 2020, 472: Paper No 228456. |
| [29] | Najmi A U H, Anyanwu I S, XIE Xu, et al. Experimental investigation and optimization of proton exchange membrane fuel cell using different flow fields[J]. Energy, 2021, 217: Paper No 119313. |
| [30] | WANG Lin, Husar A, ZHOU Tianhong, et al. A parametric study of PEM fuel cell performances[J]. Int J Hydr Energ, 2003, 28(11): 1263-1272. |
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| [2] | 史启通, 冯聪, 李冰, 张存满, 明平文. 气体扩散层变形模量与脊槽转角半径优化设计[J]. 汽车安全与节能学报, 2023, 14(1): 98-105. |
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| [5] | 黄福森, 汪尚尚, 李 哲, 等. 过冷水对质子交换膜燃料电池零下启动能力与特性的影响[J]. 汽车安全与节能学报, 2019, 10(1): 82-87. |
| [6] | 王诚,黄俊,赵波,肖宇, 赵鹏程,李建秋,张剑波. PEMFC 全车况性能衰减的研究进展[J]. JASE, 2016, 07(01): 86-93. |
| [7] | 翟双. 国产化车用燃料电池动力系统的研发方向[J]. 汽车安全与节能学报, 2015, 6(03): 286-290. |
| [8] | Erich Ramschak, Nicolas Fouquet, Harald Brandstaetter, Viktor Hacker. 包含寿命监测的在线燃料电池监测和运行状态识别(英文)[J]. 汽车安全与节能学报, 2011, 2(1): 45-52. |
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