中间阻塞叉指型流场设计下聚合物电解质膜燃料电池性能的参数数值研究

IF 2.6 4区 工程技术 Q3 ELECTROCHEMISTRY
Fuel Cells Pub Date : 2023-07-31 DOI:10.1002/fuce.202200188
Fatemeh Bagherighajari, Abbas Moradi Bilondi, Mohammadmahdi Abdollahzadehsangroudi, Ali Hamrang, José Carlos Páscoa
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引用次数: 0

摘要

流场设计是聚合物电解质膜燃料电池(pemfc)实现高性能的关键。本研究采用两相、多组分和三维模型来模拟阴极侧采用中间块的交叉流场设计的pemfc的性能。详细的参数研究提出了各种几何和操作参数的影响。在研究的参数中,进口质量流量、相对湿度和肋宽对电池性能的影响最大。结果表明,与平行设计相比,增加阴极化学计量比可以提高阻塞交叉设计的燃料电池性能。此外,使用高度值较高的阴极通道会降低PEMFC在所有流场中的性能。较高的肋/通道宽度比值导致细胞性能降低,因为液态水积聚在肋区域。然而,在较高的肋/通道宽度比下,使用交叉流动设计的积极效果更为明显。此外,在相对湿度较低的情况下(RH = 25%),由于更有效的肋上对流和更高的除水率,与RH = 100%的情况相比,交叉指状II型的性能提高了10.4%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A parametric numerical study on the performance of polymer electrolyte membrane fuel cell with intermediate-blocked interdigitated flow field designs

Flow field design is crucial for achieving higher performance in polymer electrolyte membrane fuel cells (PEMFCs). This study uses a two-phase, multi-component, and three-dimensional model to simulate the performance of PEMFCs that use interdigitated flow field design with intermediate blocks on the cathode side. A detailed parametric study is presented to investigate the effects of various geometric and operational parameters. Of the parameters studied, inlet mass flow rate, relative humidity, and rib width had the greatest impact on cell performance. The results show that increasing the cathode stoichiometric ratio resulted in higher fuel cell performance for blocked interdigitated designs compared to parallel designs. In addition, using cathode channels with higher height values resulted in lower PEMFC performance for all flow fields. Higher values of rib/channel width ratio resulted in lower cell performance due to liquid water accumulation in the rib regions. However, at higher rib/channel width ratios, the positive effect of using interdigitated flow designs was more pronounced. Moreover, at a low relative humidity of RH = 25%, a 10.4% higher performance was obtained for the interdigitated type II compared to cases with RH = 100%, due to more effective over-rib convection and higher water removal.

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来源期刊
Fuel Cells
Fuel Cells 工程技术-电化学
CiteScore
5.80
自引率
3.60%
发文量
31
审稿时长
3.7 months
期刊介绍: This journal is only available online from 2011 onwards. Fuel Cells — From Fundamentals to Systems publishes on all aspects of fuel cells, ranging from their molecular basis to their applications in systems such as power plants, road vehicles and power sources in portables. Fuel Cells is a platform for scientific exchange in a diverse interdisciplinary field. All related work in -chemistry- materials science- physics- chemical engineering- electrical engineering- mechanical engineering- is included. Fuel Cells—From Fundamentals to Systems has an International Editorial Board and Editorial Advisory Board, with each Editor being a renowned expert representing a key discipline in the field from either a distinguished academic institution or one of the globally leading companies. Fuel Cells—From Fundamentals to Systems is designed to meet the needs of scientists and engineers who are actively working in the field. Until now, information on materials, stack technology and system approaches has been dispersed over a number of traditional scientific journals dedicated to classical disciplines such as electrochemistry, materials science or power technology. Fuel Cells—From Fundamentals to Systems concentrates on the publication of peer-reviewed original research papers and reviews.
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