J. C. Amphlett, R. Mann, B. Peppley, P. Roberge, A. Rodrigues
{"title":"A practical PEM fuel cell model for simulating vehicle power sources","authors":"J. C. Amphlett, R. Mann, B. Peppley, P. Roberge, A. Rodrigues","doi":"10.1109/BCAA.1995.398535","DOIUrl":null,"url":null,"abstract":"The interest in fuel cell technology as an alternative to internal combustion engines is growing rapidly with the increased concern with environmental issues such as reducing vehicle emissions. Fuel cells offer a power source which produces electrical energy from fuel and oxidant which produce little or no emissions. Fuel cell power sources are being considered for both terrestrial and marine applications. The research and commercialization of such systems require system modelling to determine performance levels and fuel and oxidant requirements. A practical model will have to be flexible in its calculations depending on the information available. A model predicting the performance of a proton exchange membrane (PEM) fuel cell has been developed for a Ballard Mark V 5 kW 35-cell stack. The parametric model combining both empirical and mechanistic qualities was developed to calculate the cell voltage output in terms of complex relationships between current, stack temperature, and inlet partial pressure of hydrogen and oxygen. The model utilizes an iterative computer solution to obtain a practical flexible model which could calculate any variable in terms of the others. This paper illustrates the use of a practical model to determine the fuel and oxidant requirements to achieve various levels of power required for different vehicle power supplies. Applications to automobiles, buses, locomotives, ships, submarines, and unmanned underwater vehicles with power supplies of 3-3000 kW were investigated.<<ETX>>","PeriodicalId":423542,"journal":{"name":"Proceedings of the Tenth Annual Battery Conference on Applications and Advances","volume":"1 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"1995-01-10","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"53","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Proceedings of the Tenth Annual Battery Conference on Applications and Advances","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1109/BCAA.1995.398535","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 53
Abstract
The interest in fuel cell technology as an alternative to internal combustion engines is growing rapidly with the increased concern with environmental issues such as reducing vehicle emissions. Fuel cells offer a power source which produces electrical energy from fuel and oxidant which produce little or no emissions. Fuel cell power sources are being considered for both terrestrial and marine applications. The research and commercialization of such systems require system modelling to determine performance levels and fuel and oxidant requirements. A practical model will have to be flexible in its calculations depending on the information available. A model predicting the performance of a proton exchange membrane (PEM) fuel cell has been developed for a Ballard Mark V 5 kW 35-cell stack. The parametric model combining both empirical and mechanistic qualities was developed to calculate the cell voltage output in terms of complex relationships between current, stack temperature, and inlet partial pressure of hydrogen and oxygen. The model utilizes an iterative computer solution to obtain a practical flexible model which could calculate any variable in terms of the others. This paper illustrates the use of a practical model to determine the fuel and oxidant requirements to achieve various levels of power required for different vehicle power supplies. Applications to automobiles, buses, locomotives, ships, submarines, and unmanned underwater vehicles with power supplies of 3-3000 kW were investigated.<>
随着人们对减少汽车尾气排放等环境问题的日益关注,人们对燃料电池技术作为内燃机替代品的兴趣正在迅速增长。燃料电池提供了一种能源,它从燃料和氧化剂中产生电能,产生很少或没有排放。燃料电池动力源正在考虑用于陆地和海洋。这种系统的研究和商业化需要系统建模来确定性能水平以及燃料和氧化剂的要求。一个实用的模型必须根据可获得的信息进行灵活的计算。针对Ballard Mark V 5kw 35电池堆,建立了质子交换膜(PEM)燃料电池性能预测模型。建立了结合经验质量和力学质量的参数化模型,根据电流、堆温、氢气和氧气入口分压之间的复杂关系计算电池电压输出。该模型采用计算机迭代求解的方法,得到了一个实用的灵活模型,该模型可以根据其他变量计算任意变量。本文说明了使用一个实用的模型来确定燃料和氧化剂的需求,以实现不同车辆电源所需的各种功率水平。研究了3- 3000kw电源在汽车、公共汽车、机车、船舶、潜艇和无人水下航行器上的应用。