喷油器
计算流体力学
阳极
工作(物理)
核工程
天然气
环境科学
质子交换膜燃料电池
机械
机械工程
化学
工程类
物理
废物管理
燃料电池
化学工程
物理化学
电极
作者
Mingtao Hou,Fengxiang Chen,Zhifeng Xia
标识
DOI:10.1080/15435075.2023.2255659
摘要
ABSTRACTAnode gas recirculation systems have a critical impact on the performance and hydrogen utilization efficiency of proton-exchange membrane fuel cells. The ejector is one of the main devices of the anode gas recirculation system, and offers advantages such as low cost, no parasitic power, and simple structure. In this study, a two-dimensional ejector model was adopted, and its performance was investigated using computational fluid dynamics (CFD). The effect of the secondary flow relative molecular mass (SFRMM) on the ejector performance was quantified. A regression model that describes the relationship between the SFRMM and entrainment ratio (ER) was proposed. The flow field characteristics, such as the pressure and velocity inside the ejector, were also analyzed. The results show that the higher the SFRMM, the greater the ER, and the lower the hydrogen recirculation ratio. Among the 90 sets of ER data under all operating conditions, the relative errors between the predicted values of the regression model and the simulated values from CFD are generally within 11%, with an average relative error of 6.1%.KEYWORDS: anode gas recirculationcomputational fluid dynamicsejectorentrainment ratiorelative molecular mass AcknowledgementsThis work was supported by the [Key Technology R&D Program of Anhui Province] under Grant [Number 2019b05050004]; [National Natural Science Foundation of China] under Grant [Number U21A20166].Disclosure statementNo potential conflict of interest was reported by the authors.Additional informationFundingThis work was supported by the National Natural Science Foundation of China [U21A20166]; Key Technology R&D Program of Anhui Province [2019b05050004].
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