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Design Optimization of Alternator and Battery Systems with a Recuperation Control Algorithm for a Mid-Sized Sedan

机译:用于中型轿车的倒退控制算法的交流发电机和电池系统的设计优化

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The fuel economy of a vehicle can be improved by recuperating the kinetic energy when the vehicle is decelerated. However, if there is no electrical traction component, the recuperated energy can be used only by the other electrical systems of the vehicle. Thus, the fuel economy improvement can be maximized by balancing the recuperated energy and the consumed energy. Also, suitable alternator and battery management is required to maximize the fuel economy. This paper describes a design optimization process of the alternator and battery system equipped with recuperation control algorithms for a mid-sized sedan based on the fuel economy and system cost. A vehicle model using AVL Cruise is developed for cycle simulations and validated with experimental data. The validated model is used for the parametric study and design optimization of the alternator and battery systems with single and dual energy storage. In this paper, recuperation systems with Flooded, AGM, and Li-ion batteries are compared and different design optimization processes are presented depending on the battery types and system architectures.
机译:当车辆减速时,可以通过恢复动能来改善车辆的燃料经济性。然而,如果没有电牵引部件,则可以仅由车辆的其他电气系统使用恢复能量。因此,通过平衡恢复的能量和消耗的能量,可以最大化燃料经济性改善。此外,需要合适的交流发电机和电池管理来最大限度地提高燃油经济性。本文介绍了交流发电机和电池系统的设计优化过程,其配备了基于燃料经济性和系统成本的中型轿车的恢复控制算法。使用AVL巡航的车辆模型用于循环模拟,并用实验数据验证。经过验证的模型用于具有单个和双能量存储的交流发电机和电池系统的参数研究和设计优化。在本文中,比较了具有洪水,AGM和锂离子电池的恢复系统,并根据电池类型和系统架构提出了不同的设计优化过程。

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