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气体扩散层的组成参数对氧传输阻力的影响 被引量:1
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作者 刘志成 周利 +2 位作者 孙昕野 齐满满 邵志刚 《电源技术》 CAS 北大核心 2021年第11期1385-1388,1452,共5页
利用极限电流密度法对PEMFCs的氧传输阻力(OTR)进行测定。研究了GDL中的聚四氟乙烯(PTFE)含量、碳粉载量以及碳粉种类这三个主要的组成参数对于OTR影响规律,并结合相关的物理和电化学表征对实验结果进行分析。结果发现:在一定的阴极增... 利用极限电流密度法对PEMFCs的氧传输阻力(OTR)进行测定。研究了GDL中的聚四氟乙烯(PTFE)含量、碳粉载量以及碳粉种类这三个主要的组成参数对于OTR影响规律,并结合相关的物理和电化学表征对实验结果进行分析。结果发现:在一定的阴极增湿条件下,OTR随着PTFE含量增加呈现先减小后增加的趋势,当PTFE含量为20%(质量分数)时,OTR最小;随着碳粉载量增加,OTR也呈现先减小后增加的趋势,当碳粉载量为1.0 mg/cm^(2)时,OTR最小。但碳粉载量对于OTR的影响程度明显大于PTFE含量的影响程度。该研究结果为GDL内部传质规律的探索提供了参考。 展开更多
关键词 质子交换膜燃料电池 气体扩散层 氧传输阻力
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Understanding the Morphology and Mass Transport Resistance of Mesoporous Carbon-Supported PEMFC Based on Modeling Analysis
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作者 Hao Deng Jia Liu Zhong-Jun Hou 《电化学(中英文)》 北大核心 2025年第5期37-61,共25页
Mesoporous carbon supports mitigate platinum(Pt)sulfonic poisoning through nanopore-confined Pt deposition,yet their morphological impacts on oxygen transport remain unclear.This study integrates carbon support morpho... Mesoporous carbon supports mitigate platinum(Pt)sulfonic poisoning through nanopore-confined Pt deposition,yet their morphological impacts on oxygen transport remain unclear.This study integrates carbon support morphology simulation with an enhanced agglomerate model to establish a mathematical framework elucidating pore evolution,Pt utilization,and oxygen transport in catalyst layers.Results demonstrate dominant local mass transport resistance governed by three factors:(1)active site density dictating oxygen flux;(2)ionomer film thickness defining shortest transport path;(3)ionomer-to-Pt surface area ratio modulating practical pathway length.At low ionomer-to-carbon(I/C)ratios,limited active sites elevate resistance(Factor 1 dominant).Higher I/C ratios improve the ionomer coverage but eventually thicken ionomer films,degrading transport(Factors 2–3 dominant).The results indicate that larger carbon particles result in a net increase in local transport resistance by reducing external surface area and increasing ionomer thickness.As the proportion of Pt situated in nanopores or the Pt mass fraction increases,elevated Pt density inside the nanopores exacerbates pore blockage.This leads to the increased transport resistance by reducing active sites,and increasing ionomer thickness and surface area.Lower Pt loading linearly intensifies oxygen flux resistance.The model underscores the necessity to optimize support morphology,Pt distribution,and ionomer content to prevent pore blockage while balancing catalytic activity and transport efficiency.These insights provide a systematic approach for designing high-performance mesoporous carbon catalysts. 展开更多
关键词 Mesoporous carbon support Electrochemical active surface area Platinum coverage Oxygen transport resistance Pore volume distribution
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