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Mathematical Methods Applied to Economy Optimization of an Electric Vehicle with Distributed Power Train System

机译:数学方法在分布式动力总成系统电动汽车经济性优化中的应用

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摘要

This research presents mathematical methods to develop a high-efficiency power train system for a microelectric vehicle (MEV). First of all, to get the optimal ratios of a two-speed gearbox, the functional relationship of energy consumption and transmissions is established using the design of experiment (DOE) and min-max fitting distance methods. The convex characteristic of the model and the main and interactive effects of transmissions on energy consumption are revealed and hill-climbing method is adopted to search the optimal ratios. Then, to develop an efficient and real-time drive strategy, an optimization program is proposed including shift schedule, switch law, and power distribution optimization. Particularly, to construct a mathematical predictive distribution model, firstly Latin hypercube design (LHD) method is adopted to generate random and discrete operations of the MEV; secondly the optimal power distribution coefficients under various LHD points are confirmed based on offline genetic algorithm (GA); then Gauss radial basis function (RBF) is utilized to solve the low-precision problem in polynomial model. Finally, simulation verifications of the optimized scheme are carried out. Results show that the proposed mathematical methods for the optimizations of transmissions and drive strategy are able to establish a high-efficiency power train system.
机译:这项研究提出了开发一种用于微电动汽车(MEV)的高效动力传动系统的数学方法。首先,为了获得两速变速箱的最佳传动比,使用实验设计(DOE)和最小-最大装配距离方法建立了能量消耗和变速器的功能关系。揭示了模型的凸性特征,以及传输对能耗的主要影响和交互作用,并采用爬山法搜索最佳比率。然后,为了开发一种高效,实时的驱动策略,提出了包括换挡时间表,开关定律和功率分配优化的优化程序。特别是,为了构建数学预测分布模型,首先采用拉丁超立方体设计(LHD)方法生成MEV的随机和离散运算;其次,基于离线遗传算法(GA)确定了各LHD点下的最优功率分配系数。然后利用高斯径向基函数(RBF)解决多项式模型中的低精度问题。最后,对优化方案进行了仿真验证。结果表明,所提出的用于优化变速器和驱动策略的数学方法能够建立高效的动力总成系统。

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  • 来源
    《Mathematical Problems in Engineering》 |2016年第2期|4949561.1-4949561.14|共14页
  • 作者

    Sun Binbin; Gao Song; Ma Chao;

  • 作者单位

    Shandong Univ Technol, Sch Transportat & Vehicle Engn, Zibo 255049, Shandong, Peoples R China;

    Shandong Univ Technol, Sch Transportat & Vehicle Engn, Zibo 255049, Shandong, Peoples R China;

    Shandong Univ Technol, Sch Transportat & Vehicle Engn, Zibo 255049, Shandong, Peoples R China;

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