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首页> 外文期刊>Power Electronics, IEEE Transactions on >Predictive Algorithm for Optimizing Power Flow in Hybrid Ultracapacitor/Battery Storage Systems for Light Electric Vehicles
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Predictive Algorithm for Optimizing Power Flow in Hybrid Ultracapacitor/Battery Storage Systems for Light Electric Vehicles

机译:轻型电动汽车混合超级电容器/电池存储系统中优化潮流的预测算法

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This study deals with the optimal control of hybrid energy storage systems for electric vehicle applications. These storage systems can capitalize on the high specific energy of Lithium-Ion batteries and the high specific power of modern ultracapacitors. The new predictive algorithm uses a state-based approach inspired by power systems optimization, organized as a probability-weighted Markov process to predict future load demands. Decisions on power sharing are made in real time, based on the predictions and probabilities of state trajectories along with associated system losses. Detailed simulations comparing various power sharing algorithms are presented, along with converter-level simulations presenting the response characteristics of power sharing scenarios. The full hybrid storage system along with the mechanical drivetrain is implemented and validated experimentally on a 500 W, 50 V system with a programmable drive cycle having a strong regenerative component. It is experimentally shown that the hybrid energy storage system runs more efficiently and captures the excess regenerative energy that is otherwise dissipated in the mechanical brakes due to the battery’s limited charge current capability.
机译:这项研究涉及电动汽车应用中混合动力储能系统的最优控制。这些存储系统可以利用锂离子电池的高比能量和现代超级电容器的高比功率。新的预测算法使用了受电力系统优化启发的基于状态的方法,该方法以概率加权的马尔可夫过程进行组织,以预测未来的负荷需求。基于状态轨迹的预测和概率以及相关的系统损耗,可以实时做出功率分配决策。给出了比较各种功率共享算法的详细仿真,以及表示功率共享场景响应特性的转换器级仿真。完整的混合存储系统以及机械传动系统是在500 W,50 V系统上实施并通过实验验证的,该系统具有可编程的驱动周期,具有强大的再生组件。实验表明,混合动力储能系统可以更高效地运行,并且可以捕获多余的再生能量,否则由于电池的充电电流能力有限,这些多余的再生能量会散布在机械制动器中。

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