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首页> 外文期刊>International Journal of Automotive Technology >Optimization of power management among an engine, battery and ultra-capacitor for a series HEV: A dynamic programming application
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Optimization of power management among an engine, battery and ultra-capacitor for a series HEV: A dynamic programming application

机译:用于系列HEV的发动机,电池和超电容中电力管理优化:动态编程应用

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摘要

In a hybrid electric vehicle (HEV) system, it is an important issue on how to distribute the output power from multiple power generating components to operate a vehicle more efficiently. Many studies have been conducted on how to manage multiple power sources of a vehicle based on various optimization theories. In this study, an algorithm to calculate the optimization of a series HEV that has three power generating components, engine, battery and ultra-capacitor, is developed based on dynamic programming. Normally dynamic programming is applied to the optimization of power management and components sizing by estimating potential fuel economy for electrified vehicle such as HEV, Plug-in HEV or Fuelcell HEV. In contrast with most objective systems that have only two power generating components, the system in this study has three power sources. Since the system has three power sources, the number of state and control variables of optimization problem increases. Therefore the number of calculations increases unreasonably. To decrease the number and time of calculations, a new electric model that contains the both characteristics of battery and ultra-capacitor is developed with some assumptions. In comparison with the optimization algorithm which follows the theory of DP with no assumptions, the results from the newly developed algorithm has 1.04 % discrepancy in terms of fuel economy, even though the calculation time decreases to 4400 times less.
机译:在混合动力电动车(HEV)系统中,关于如何从多个发电部件分配输出功率的重要问题,以更有效地操作车辆。如何基于各种优化理论管理如何管理车辆的多电源来源的研究。在本研究中,基于动态编程开发了一种计算具有三个发电组件,发动机,电池和超电容的系列HEV的优化算法。通常,动态编程应用于通过估计电气化车辆(如HEV,插入式HEV或燃料电池HEV)的潜在燃料经济性来优化电力管理和组件尺寸。相反,与只有两个电源组件的大多数客观系统,本研究中的系统具有三个电源。由于系统具有三个电源,因此优化问题的状态和控制变量的数量增加。因此计算的数量不合理地增加。为了减少计算的数量和时间,使用一些假设开发了一种包含电池和超电容器的两个特性的新电气模型。与不具有假设的DP理论的优化算法相比,新开发算法的结果在燃料经济性方面具有1.04%的差异,即使计算时间减少到4400倍。

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