堆栈(抽象数据类型)
发电机(电路理论)
计算机科学
质子交换膜燃料电池
功率(物理)
电气工程
燃料电池
工程类
操作系统
物理
化学工程
量子力学
作者
Mohd Shahbudin Masdar,Siti Najibah Abd Rahman,Masli Irwan Rosli,Edy Herianto Majlan,Syahril Anuar M. Rejab,Chew Chien Lye
标识
DOI:10.17576/jkukm-2018-si1(1)-01
摘要
Generally, it is possible to reduce the size, cost, and parasitic loss of polymer electrolyte membrane fuel cell (PEMFC) system
\nwith an air-cooled system, open cathode and self-humidifying stack for portable fuel cell application. In order to ensure the
\nthat PEMFC stack applicable for portable fuel cell application, a mathematical model is useful tool for saving design cost,
\ngiving a better system design and operation. Therefore, this study is focused on developing a simplified zero-dimensional
\nmathematical model for self-humidifying and open cathode 200W PEMFC stack for portable fuel cell generator application.
\nThe mathematical equations are modelled by using Matlab-Simulink tools in order to simulate the operation of the developed
\nmode. This simulation is then compared to a commercially 200W Horizon PEMFC stack (H-200) for data validation purposes.
\nThe air inlet flow rate is chosen to test the sensitivity of the fuel cell stack model. The air inlet stoichiometry of 2, 5, 20,
\nand 50 was varied to generate a different air inlet flow rate. Based on the simulation, air inlet stoichiometry above 15 is
\nsufficient to produce a high output stack voltage. However, in a real operation of the H-200 fuel cell stack system needs air
\ninlet stoichiometry at about 20 because a fan is used to supply air and also the cooling system. High anode and cathode
\nrelative humidity result in a high output stack voltage. However, it is better to increase the anode relative humidity than
\ncathode relative humidity to get high output stack voltage.
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