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首页> 外文期刊>Proceedings of the IEEE >Toward Holistic Energy Management Strategies for Fuel Cell Hybrid Electric Vehicles in Heavy-Duty Applications
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Toward Holistic Energy Management Strategies for Fuel Cell Hybrid Electric Vehicles in Heavy-Duty Applications

机译:重型应用中的燃料电池混合电动汽车的整体能源管理策略

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The increasing need to slow down climate change for environmental protection demands further advancements toward regenerative energy and sustainable mobility. While individual mobility applications are assumed to be satisfied with improving battery electric vehicles (BEVs), the growing sector of freight transport and heavy-duty applications requires alternative solutions to meet the requirements of long ranges and high payloads. Fuel cell hybrid electric vehicles (FCHEVs) emerge as a capable technology for high-energy applications. This technology comprises a fuel cell system (FCS) for energy supply combined with buffering energy storages, such as batteries or ultracapacitors. In this article, recent successful developments regarding FCHEVs in various heavy-duty applications are presented. Subsequently, an overview of the FCHEV drivetrain, its main components, and different topologies with an emphasis on heavy-duty trucks is given. In order to enable system layout optimization and energy management strategy (EMS) design, functionality and modeling approaches for the FCS, battery, ultracapacitor, and further relevant subsystems are briefly described. Afterward, common methodologies for EMSs are structured, presenting a new taxonomy for dynamic optimization-based EMSs from a control engineering perspective. Finally, the findings lead to a guideline toward holistic EMSs, encouraging the co-optimization of system design, and EMS development for FCHEVs. For the EMS, we propose a layered model predictive control (MPC) approach, which takes velocity planning, the mitigation of degradation effects, and the auxiliaries into account simultaneously.
机译:越来越需要减缓环境保护气候变化的需求需要进一步进展,更新能源和可持续移动性。虽然假设各个流动性应用满足改善电池电动车(BEV),但运输运输和重型应用的日益增长的部门需要替代解决方案,以满足长范围和高有效载荷的要求。燃料电池混合动力电动汽车(FCHEV)始置为高能量应用的能力。该技术包括用于能量供给与缓冲能量存储器,例如电池或超级电容器组合的燃料电池系统(FCS)。在本文中,提出了关于各种重型申请中的FCHEV的最新成功发展。随后,给出了FChev动脉动脉,其主要成分和不同拓扑的概述,并强调重型卡车。为了使系统布局优化和能量管理策略(EMS)设计,简要描述FCS,电池,超容器和其他相关子系统的功能和建模方法。之后,构成了EMS的常见方法,从控制工程角度呈现基于动态优化的EMS的新分类。最后,调查结果导致了对整体EMS的指导,鼓励对系统设计的共同优化,以及FCHEV的开发。对于EMS,我们提出了一种分层模型预测控制(MPC)方法,该方法采用速度规划,减轻劣化效果,以及同时考虑的辅助。

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