集成复合电机的改进动力系统对电动汽车能耗的优化效果

IF 2.6 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Lijun Jia
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引用次数: 0

摘要

多源耦合传动系统是一种具有高性能和节能潜力的动力传动系统,目前市场上常用的多源耦合传动的纯电动汽车大多采用电机双轴分布式独立驱动方案。多动力源融合混合动力系统的构型设计方法主要关注基于行星齿轮机构的动力分流混合动力系统的搜索与选择。但目前尚未涵盖传动系统的配置设计,导致纯电动汽车多电源融合混合动力系统的配置缺乏通用的表达和生成方法。因此,为了解决双电机单行星阵列电力系统的构型优化设计问题,提出了一种改进的通用矩阵拓扑设计方法,生成所有可行的拓扑结构。通过基于动态规划算法的控制策略,对各备选构型的能耗、经济性和动态性能进行了优化和仿真。在综合测试条件下,选取了25个满足筛选条件的备选方案,最终得到5个优化配置方案。配置1的经济性最好,能耗降低约6.3%,续驶里程提高约6.7%。其0-100 km/h加速时间比参考配置快约31.4%。此外,实际驾驶时的能耗经济性与理论最优能耗经济性基本一致,仅相差0.3%。本研究的成功不仅为双电机单排星型列车动力系统配置优化提供了一种创新方法,而且对提高能源利用效率、降低能耗、提高电动汽车整体性能具有积极影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization Effect of the Improved Power System Integrating Composite Motors on the Energy Consumption of Electric Vehicles
The multi-power source coupled transmission system is a high-performance and energy-saving potential power transmission system, and most of the commonly used pure electric vehicles in the market that use multi-power source coupled drive adopt the motor dual-axis distributed independent drive scheme. The configuration design method for multi-power source fusion hybrid systems mainly focuses on the search and selection of power split hybrid systems based on planetary gear mechanisms. But it has not yet covered the configuration design of transmission systems, resulting in a lack of universal expression and generation methods for the configuration of multi-power source fusion hybrid systems in pure electric vehicles. Therefore, to solve the configuration optimization design problem of a dual-motor single-planetary-array power system, an improved general matrix topology design method is proposed to generate all feasible topology structures. And energy consumption, economy, and the dynamic performance of alternative configurations are optimized and simulated through the control strategy based on a dynamic programming algorithm. Under comprehensive testing conditions, 25 alternative options that met the screening criteria were selected, and, ultimately, five optimized configuration options were obtained. Configuration 1 has the best economy, reducing energy consumption by about 6.3%and increasing driving range by about 6.7%. Its 0–100 km/h acceleration time is about 31.4% faster than the reference configuration. In addition, the energy consumption economy during actual driving is almost the same as the theoretical optimal energy consumption economy, with a difference of only 0.3%. The success of this study not only provides an innovative method for optimizing the configuration of dual-motor single-row star train power systems, but also has a positive impact on improving energy utilization efficiency, reducing energy consumption, and improving the overall performance of electric vehicles.
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来源期刊
World Electric Vehicle Journal
World Electric Vehicle Journal Engineering-Automotive Engineering
CiteScore
4.50
自引率
8.70%
发文量
196
审稿时长
8 weeks
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