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Design and Optimization of Hybrid Electric Vehicle Drivetrain and Control Strategy Parameters Using Evolutionary Algorithmsudud

机译:基于进化算法的混合动力电动汽车传动系统及控制策略参数的设计与优化 ud ud

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摘要

Advanced propulsion technologies such as hybrid electric vehicles (HEVs) have demonstrated improved fuel economy with lower emissions compared to conventional vehicles. Superior HEV performance in terms of higher fuel economy and lower emissions, with satisfaction of driving performance, necessitates a careful balance of drivetrain component design as well as control strategy parameter monitoring and tuning. In this thesis, an evolutionary global optimization-based derivative-free, multi-objective genetic algorithm (MOGA) is proposed, to optimize the component sizing of a NOVA® parallel hybrid electric transit bus drivetrain. In addition, the proposed technique has been extended to the design of an optimal supervisory control strategy for effective on-board energy management. The proposed technique helps find practical trade off-solutions for the objectives. Simulation test results depict the tremendous potential of the proposed optimization technique in terms of improved fuel economy and lower emissions (nitrous-oxide, NOx, carbon monoxide, CO, and hydrocarbons, HC). The tests were conducted under varying drive cycles and control strategies
机译:混合动力汽车(HEV)等先进的推进技术已证明与传统汽车相比具有更高的燃油经济性和更低的排放。在更高的燃油经济性和更低的排放方面,卓越的混合动力汽车性能以及对行驶性能的满意,使得必须仔细权衡动力传动系统组件设计以及控制策略参数的监控和调整。本文提出了一种基于进化全局优化的无导数多目标遗传算法(MOGA),以优化NOVA®并联混合动力电动公交车传动系统的零部件尺寸。另外,所提出的技术已经扩展到用于有效车载能量管理的最佳监督控制策略的设计。所提出的技术有助于为目标找到可行的折衷解决方案。模拟测试结果显示了所提出的优化技术在改善燃油经济性和降低排放(一氧化二氮,NOx,一氧化碳,CO和碳氢化合物,HC)方面的巨大潜力。在不同的驾驶周期和控制策略下进行了测试

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    Desai Chirag;

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  • 年度 2010
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  • 原文格式 PDF
  • 正文语种 en
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