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Development and Improvement of a Situation-Based Power Management Method for Multi-Source Electric Vehicles

机译:基于状态的多源电动汽车电源管理方法的开发与改进

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This paper presents an improved situation-based optimal power management method for multi-source electric vehicles. The presented method implements a novel situation recognition principle, based on mapping the vehicle operating conditions into a multi-dimensional space referred to as: grid- space. In grid-space, multiple recognition variables are depicted as axes. These variables have been initially determined based on literature analysis to be namely: vehicle speed, power demand, and speed dynamics. Control parameters of the supervisory power management algorithm have been optimized offline for every vehicle situation (state) in the grid-space. Improvement of grid- space structure is investigated based on two concepts: different axes' discretization and implementation of further variables. For each new grid-space structure, offline optimization of control parameters is performed, solutions to vehicle states in grid-space are assigned, and real-time application is conducted to analyze the energy saving results. In this work, six grid- space structures have been considered and tested using four driving cycles representing different operating conditions. Results analysis revealed the positive impact of accurate discretization of power demand and speed dynamics to achieve a significant improvement of energy efficiency robustly for all tested driving cycles.
机译:本文提出了一种改进的基于情境的多源电动汽车最优功率管理方法。提出的方法基于将车辆运行状况映射到称为“网格空间”的多维空间中,实现了一种新颖的情况识别原理。在网格空间中,多个识别变量被描述为轴。这些变量已经根据文献分析初步确定为:车速,功率需求和速度动态。监控电源管理算法的控制参数已针对网格空间中的每种车辆状况(状态)进行了离线优化。基于两个概念研究了网格空间结构的改进:不同轴的离散化和其他变量的实现。对于每个新的网格空间结构,都执行控制参数的离线优化,分配网格空间中车辆状态的解决方案,并进行实时应用以分析节能结果。在这项工作中,已经考虑并使用代表不同操作条件的四个行驶周期对六个网格空间结构进行了测试。结果分析表明,对功率需求和速度动力学进行精确离散,对于在所有测试的驾驶循环中都能显着提高能量效率具有积极的影响。

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