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A comparative study between causal and non-causal algorithms for the energy management of hybrid storage systems

机译:混合存储系统能源管理的因果算法与非因果算法的比较研究

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This paper presents a comparative study between two non-causal algorithms for the energy management problem of electric vehicles, endowed with batteries and supercapacitors(SCs). Toward that goal, an optimization-based energy problem is formulated, which targets the minimization of the source's energy losses throughout a given driving cycle. This problem is solved, firstly, with the help of a fast (but locally optimal) non-linear programming solver; and, secondly, with a slow, but globally optimal, dynamic programming (DP) approach. Simulation results will demonstrate that, despite the different theoretical properties associated with these two solver approaches, both generate similar solutions. In the second part of the work, we will develop a filter-based energy management algorithm, i.e., employ batteries to provide the low-frequency content of the power demand, while SCs cover the high-frequency demand. Our approach builds on the idea of adapting the filter's time constant throughout the vehicle's journey, using, for that purpose, a fuzzy logic algorithm and the information of the state of the vehicle. In comparison with the traditional fixed time-constant approach, the simulation results show that under some conditions the adaptive time-constant algorithm has the potential to reduce the energy losses of the sources by up to 62%.
机译:本文对两种具有电池和超级电容器(SC)的电动汽车能源管理问题的非因果算法进行了比较研究。为了实现该目标,提出了一种基于优化的能源问题,该问题的目标是在给定的驾驶周期内最大程度地减少能源损失。首先,借助快速(但局部最优)的非线性规划求解器解决该问题;其次,采用缓慢但全局最佳的动态编程(DP)方法。仿真结果将证明,尽管与这两种求解器方法相关的理论特性不同,但两者都产生了相似的解。在工作的第二部分中,我们将开发一种基于滤波器的能量管理算法,即使用电池来提供电力需求的低频内容,而SC则可以满足高频需求。我们的方法基于以下想法:在整个行驶过程中使用模糊逻辑算法和车辆状态信息来调整滤波器在整个行驶过程中的时间常数。与传统的固定时间常数方法相比,仿真结果表明,在某些条件下,自适应时间常数算法可以将源的能量损失降低多达62%。

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