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Optimization of hybrid energy systems and adaptive energy management for hybrid electric vehicles

机译:混合动力电动汽车混合能源系统及自适应能源管理的优化

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摘要

This paper proposes an optimal hybrid energy sources sizing methodology for hybrid electric vehicles comprising ultracapacitor (UC) and fuel cell (FC) with battery units (BU). For this purpose, a multi objective problem is formulated using dynamic-source models to evaluate the system's initial cost, weight, running cost, and cost associated with source degradation. Furthermore, a novel adaptive energy management strategy (AEMS) that focuses on dynamic-source characteristics and drive cycle power demand is proposed as an integral part of the optimization problem. Finally, to solve the hybrid energy source optimization problem, the butterfly optimization algorithm (BOA) is improved by employing the quantum wave concept to explore the search space more effectively. The performance of the proposed method is evaluated with different hybrid source configurations and various drive cycles using improved BOA, BOA and particle swarm optimization. The Matlab (R) simulation results show that battery rating can be downsized by approximately 40% upon the inclusion of UC and FC units using improved BOA. Furthermore, when the proposed AEMS is compared with a conventional discrete wavelet transform power-splitting approach used in the optimization process, the proposed AEMS performs better and could reduce the system relative cost and weight for BU-UC-FC configuration by 16% and 10% respectively.
机译:本文提出了一种最佳的混合能源尺寸尺寸混合动力电动车辆的施胶方法,包括超容器(UC)和燃料电池(FC),其中电池单元(BU)。为此目的,使用动态源模型制定多目标问题,以评估系统的初始成本,重量,运行成本以及与源劣化相关的成本。此外,提出了一种专注于动态源特性和驱动周期功率需求的新型自适应能量管理策略(AEM)作为优化问题的组成部分。最后,为了解决混合能源优化问题,通过采用量子波概念更有效地探索搜索空间来改善蝴蝶优化算法(BOA)。使用改进的蟒蛇,蟒蛇和粒子群优化,用不同的混合源配置和各种驱动循环评估所提出的方法的性能。 MATLAB(R)仿真结果表明,使用改进的蟒蛇包含UC和FC单元,电池额定值可以缩小大约40%。此外,当所提出的AEM与优化过程中使用的传统离散小波变换功率分裂方法进行比较时,所提出的AEMS更好地执行,并且可以将BU-UC-FC配置的系统相对成本和重量降低16%和10 % 分别。

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