Impact of flow configuration and temperature on water flooding and membrane water content of low-temperature proton exchange membrane fuel cell

被引:1
|
作者
Desai, Akshaykumar N. [1 ]
Mohanty, Surajeet [2 ]
Ramadesigan, Venkatasailanathan [1 ]
Singh, Suneet [1 ]
机构
[1] Indian Inst Technol, Dept Energy Sci & Engn, Mumbai 400076, India
[2] ISRO, Vikram Sarabhai Space Ctr, Fuel Cell Dev Div, Thiruvananthapuram 695022, India
关键词
Low -temperature proton exchange membrane; fuel cell; 3-D physics -based model; Multiphase flow; COMSOL Multiphysics (R); Liquid water flooding; POLYMER-ELECTROLYTE MEMBRANES; TRANSPORT PHENOMENA; MATHEMATICAL-MODEL; FIELD DESIGNS; 2-PHASE FLOW; ASPECT RATIO; PERFORMANCE; DIFFUSION; MULTIPHASE; CHANNEL;
D O I
10.1016/j.jclepro.2024.142214
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Low-temperature proton exchange membrane fuel cells (LT-PEMFCs) have emerged as promising candidates in transportation due to zero-emission, high power density and efficiency. Issues such as liquid water flooding and membrane drying significantly reduce their performance and durability during higher current density operations. Although many simplified 1-D and 2-D models have been proposed, they do not aid in understanding water dynamics and membrane water content for different flow configurations and operating temperatures. This work focuses on the development of a 3-D, multiphase, non-isothermal, physics-based model of the LT-PEMFC to address the above-mentioned issues. The model is validated with experiments performed on a 32 cm2 LT-PEMFC at 40 degrees C with a hybrid flow configuration. The results suggest that the hybrid configuration provides a power density enhancement of 12 % compared to the parallel configuration at 70 degrees C. Due to this performance improvement, Delta T of the hybrid configuration has reached 7 degrees C, which is slightly higher than the parallel configuration's Delta T of 5.7 degrees C. With an increase in operating temperature from 40 degrees C to 70 degrees C, the hybrid configuration experiences a 50% enhancement in the power density. For both temperatures, the hybrid configuration shows a consistent increment in the saturation from inlet to outlet, which creates a favorable pathway for water removal from the cell. The findings from this work suggest that the hybrid configuration is superior to the parallel configuration in terms of power density output, water removal capacity and membrane water content. This work provides valuable insight into overcoming key issues of liquid water flooding and membrane durability.
引用
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页数:15
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