高速列车车顶绝缘子的电场-流场协同优化方法

IF 8.3 1区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Transportation Electrification Pub Date : 2024-10-08 DOI:10.1109/TTE.2024.3476334
Chenguang Yang;Yujun Guo;Yang Liu;Xueqin Zhang;Song Xiao;Guangning Wu
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引用次数: 0

摘要

高速列车运行过程中产生的气动阻力不仅降低了运行效率,增加了动力消耗,而且制约了高速列车进一步提高的速度。由于屋面外保温设备的存在,屋面上的气动阻力增大,对其进行减阻优化是必然的发展趋势。本文首先建立并验证了外保温设备的仿真模型。提出了一种基于微宏观仿生结构的屋顶绝缘子电场流场协同优化方法。其次,收集数据集,包括8个输入参数和2个输出参数。构建了四个代理模型并进行了比较,以确定优选模型。然后,利用多目标粒子群优化算法(MOPSO)获得最优结构参数。对优化前后屋顶绝缘子的流场和电场进行了分析。最后,利用3d打印的绝缘子对其绝缘性能进行了验证。结果表明,优化后的屋面绝缘子减阻效果为21.33%。平均电场强度降低8.19%,闪络电压显著提高。实现了屋面外保温设备气动减阻保温性能的协同提高。
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A Cooperative Optimization Method of Electric Field-Flow Field for Roof Insulators of High-Speed Trains
Aerodynamic drag generated during the high-speed train operation not only lowers operating efficiency and increases power consumption but also restricts the speed for further improvement. As the existence of roof external insulation equipment, the aerodynamic drag on the roof increases and the optimization of drag reduction for it is an essential development trend. In this article, a simulation model for the external insulation equipment is first established and validated. Also, a cooperative optimization method of electric field-flow field of roof insulator based on micro-macro bionic structure is proposed. Second, the datasets, including eight input parameters and two output parameters, are collected. Four surrogate models are constructed and compared to determine the preferable model. Then, the optimal structural parameters are obtained using the multiobjective particle swarm optimization (MOPSO) algorithm. The flow field and the electric field of roof insulator before and after optimization are analyzed. Finally, the 3-D printed insulators are employed to verify its insulation performance. The results show that the optimized roof insulator can achieve 21.33% drag reduction. The average electric field strength decreases by 8.19%, and the flashover voltage is significantly improved. The cooperative improvement of aerodynamic drag reduction-insulation performance of the roof external insulation equipment is realized.
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来源期刊
IEEE Transactions on Transportation Electrification
IEEE Transactions on Transportation Electrification Engineering-Electrical and Electronic Engineering
CiteScore
12.20
自引率
15.70%
发文量
449
期刊介绍: IEEE Transactions on Transportation Electrification is focused on components, sub-systems, systems, standards, and grid interface technologies related to power and energy conversion, propulsion, and actuation for all types of electrified vehicles including on-road, off-road, off-highway, and rail vehicles, airplanes, and ships.
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