Zhao Chongxue, Zhang Haihang, Huang Zheng, Zhao Meng, Chen Haiming, Lin Guangyi
College of Mechanical and Electrical Engineering, Qingdao University of Science and Technology, Qingdao 266061, China.
Polymers (Basel). 2023 Jun 19;15(12):2740. doi: 10.3390/polym15122740.
In this paper, we report the preparation of a gas diffusion layer (GDL) with different gradient pore size structures. The pore structure of microporous layers (MPL) was controlled by the amount of pore-making agent sodium bicarbonate (NaHCO). We investigated the effects of the two-stage MPL and the different pore size structures in the two-stage MPL on the performance of proton exchange membrane fuel cells (PEMFC). The conductivity and water contact angle tests showed that the GDL had outstanding conductivity and good hydrophobicity. The results of the pore size distribution test indicated that introducing a pore-making agent altered the pore size distribution of the GDL and increased the capillary pressure difference within the GDL. Specifically, there was an increase in pore size within the 7-20 μm and 20-50 μm ranges, which improved the stability of water and gas transmission within the fuel cell. The maximum power density of the GDL03 was increased by 37.1% at 40% humidity, 38.9% at 60% humidity, and 36.5% at 100% humidity when compared to the commercial GDL29BC in a hydrogen-air environment. The design of gradient MPL ensured that the pore size between carbon paper and MPL changed from an initially abrupt state to a smooth transition state, which significantly improved the water and gas management capabilities of PEMFC.
在本文中,我们报道了具有不同梯度孔径结构的气体扩散层(GDL)的制备。微孔层(MPL)的孔结构通过造孔剂碳酸氢钠(NaHCO)的用量来控制。我们研究了两级MPL以及两级MPL中不同孔径结构对质子交换膜燃料电池(PEMFC)性能的影响。电导率和水接触角测试表明,该GDL具有出色的导电性和良好的疏水性。孔径分布测试结果表明,引入造孔剂改变了GDL的孔径分布,并增加了GDL内的毛细压差。具体而言,7 - 20μm和20 - 50μm范围内的孔径有所增加,这改善了燃料电池内水和气体传输的稳定性。在氢气 - 空气环境中,与商用GDL29BC相比,GDL03在40%湿度下最大功率密度提高了37.1%,在60%湿度下提高了38.9%,在100%湿度下提高了36.5%。梯度MPL的设计确保了碳纸和MPL之间的孔径从最初的突变状态转变为平滑过渡状态,这显著提高了PEMFC的水和气体管理能力。