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首页> 外文期刊>Processes >Design, Operation, Control, and Economics of a Photovoltaic/Fuel Cell/Battery Hybrid Renewable Energy System for Automotive Applications
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Design, Operation, Control, and Economics of a Photovoltaic/Fuel Cell/Battery Hybrid Renewable Energy System for Automotive Applications

机译:用于汽车应用的光伏/燃料电池/电池混合可再生能源系统的设计,运行,控制和经济性

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Meeting rapidly growing global energy demand—without producing greenhouse gases or further diminishing the availability of non-renewable resources—requires the development of affordable low-emission renewable energy systems. Here, we develop a hybrid renewable energy system (HRES) for automotive applications—specifically, a roof-installed photovoltaic (PV) array combined with a PEM fuel cell/NiCd battery bus currently operating shuttle routes on the University of Delaware campus. The system’s overall operating objectives—meeting the total power demand of the bus and maintaining the desired state of charge (SOC) of the NiCd battery—are achieved with appropriately designed controllers: a logic-based “algebraic controller” and a standard PI controller. The design, implementation, and performance of the hybrid system are demonstrated via simulation of real shuttle runs under various operating conditions. The results show that both control strategies perform equally well in enabling the HRES to meet its objectives under typical operating conditions, and under sudden cloud cover conditions; however, at consistently high bus speeds, battery SOC maintenance is better, and the system consumes less hydrogen, with PI control. An economic analysis of the PV investment necessary to realize the HRES design objectives indicates a return on investment of approximately 30% (a slight, but nonetheless positive, ~$550 profit over the bus lifetime) in Newark, DE, establishing the economic viability of the proposed addition of a PV array to the existing University of Delaware fuel cell/battery bus.
机译:要满足快速增长的全球能源需求,而又不产生温室气体或进一步减少不可再生资源的可利用性,则需要开发负担得起的低排放可再生能源系统。在这里,我们开发了一种用于汽车应用的混合可再生能源系统(HRES),特别是将屋顶安装的光伏(PV)阵列与PEM燃料电池/ NiCd电池公交车相结合,目前正在特拉华大学校园内运营穿梭路线。该系统的总体运行目标(满足总线的总功率需求并保持NiCd电池的期望充电状态(SOC))可通过适当设计的控制器实现:基于逻辑的“代数控制器”和标准PI控制器。混合系统的设计,实现和性能通过在各种操作条件下对实际穿梭车运行的仿真进行演示。结果表明,两种控制策略在使HRES在典型运行条件下以及突然的云层覆盖条件下都能达到其目标方面表现良好。但是,在始终保持较高的总线速度下,通过PI控制,电池SOC维护会更好,并且系统消耗的氢气更少。对实现HRES设计目标所必需的光伏投资的经济分析表明,在特拉华州纽瓦克,投资回报率约为30%(在整个公交车使用期内产生轻微但仍可观的550美元左右的利润),确定了该州的经济可行性。建议在现有的特拉华大学燃料电池/电池总线上增加一个光伏阵列。

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