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道路交通系统无线充电车辆的动态抗偏移典型特征识别

周熙炜 石文帅 王会峰 代亮 武奇生 白叶红

周熙炜, 石文帅, 王会峰, 代亮, 武奇生, 白叶红. 道路交通系统无线充电车辆的动态抗偏移典型特征识别[J]. 交通运输工程学报, 2024, 24(4): 195-207. doi: 10.19818/j.cnki.1671-1637.2024.04.015
引用本文: 周熙炜, 石文帅, 王会峰, 代亮, 武奇生, 白叶红. 道路交通系统无线充电车辆的动态抗偏移典型特征识别[J]. 交通运输工程学报, 2024, 24(4): 195-207. doi: 10.19818/j.cnki.1671-1637.2024.04.015
ZHOU Xi-wei, SHI Wen-shuai, WANG Hui-feng, DAI Liang, WU Qi-sheng, BAI Ye-hong. Typical feature recognition of dynamic anti-migration for wireless charging vehicles in road traffic systems[J]. Journal of Traffic and Transportation Engineering, 2024, 24(4): 195-207. doi: 10.19818/j.cnki.1671-1637.2024.04.015
Citation: ZHOU Xi-wei, SHI Wen-shuai, WANG Hui-feng, DAI Liang, WU Qi-sheng, BAI Ye-hong. Typical feature recognition of dynamic anti-migration for wireless charging vehicles in road traffic systems[J]. Journal of Traffic and Transportation Engineering, 2024, 24(4): 195-207. doi: 10.19818/j.cnki.1671-1637.2024.04.015

道路交通系统无线充电车辆的动态抗偏移典型特征识别

doi: 10.19818/j.cnki.1671-1637.2024.04.015
基金项目: 

国家重点研发计划 2021YFB2601401

陕西省重点研发计划 2022GY-308

详细信息
    作者简介:

    周熙炜(1975-),男,陕西兴平人,长安大学教授,工学博士,从事交通能源技术、电动汽车技术等研究

    通讯作者:

    王会峰(1976-),男,山西运城人,长安大学教授,工学博士

  • 中图分类号: U495

Typical feature recognition of dynamic anti-migration for wireless charging vehicles in road traffic systems

Funds: 

National Key Research and Development Program of China 2021YFB2601401

Key Research and Development Program of Shaanxi Province 2022GY-308

More Information
  • 摘要: 针对无线充电车辆的动态特征识别和车辆分型问题,设计了基于车-路协同的混合电磁感应单元和地磁场感应单元的复合感应装置;在混合电磁感应单元中,为实现动态条件下的感应识别,提出了以谐振电流有效值为无线充电车辆特征的检测方法,并通过在电路拓扑中引入电场耦合与磁场耦合2种形式,同时加入高阶的双边电容电感补偿结构;为实现半开域耦合程度的量化分析,定义了线圈传输与极板传输的功率比参数,进而实现了偏移情况下的感应识别;以地磁传感器捕获不同车辆通过时的地磁场扰动信号为例,为改善非线性非平稳信号的提取效果,提出了地磁信号的集合经验模态分解(EEMD)法;引入曲线的特征向量提取法,以小型三厢轿车、中型两厢轿车、中型厢式货车和大型客车等4种车型作为典型试验样本,将不同车辆的地磁曲线信号转化为特征向量图谱,以实现车辆形状类型的判断。研究结果表明:混合电磁感应单元在测试条件下,沿线圈偏移方向的识别长度约为220 mm,垂直于线圈向外偏移方向的识别长度约为170 mm,其识别范围比单一的磁场耦合增大约62.8%;地磁场感应单元可实现长度为3.7~12.0 m、速度为2.78~16.67 m·s-1的车辆类型特征检测,通过地磁场感应单元与混合电磁感应单元相互配合,可有效提高无线充电车辆动态分型识别的可靠性,从而促进无线充电技术在道路交通电气化设施中的应用和发展。

     

  • 图  1  复合感应系统的场景

    Figure  1.  Scenario of composite induction system

    图  2  混合电磁感应电路拓扑结构

    Figure  2.  Hybrid electromagnetic induction circuit topology

    图  3  混合电磁感应电路的简化拓扑

    Figure  3.  Simplified topology of hybrid electromagnetic induction circuit

    图  4  功率比与电容比的关系曲线

    Figure  4.  Relationship curves between power ratio and capacitance ratio

    图  5  耦合线圈半开域状态下的3D模型与磁场矢量云图

    Figure  5.  3D model and magnetic field vector cloud image of coupling coil at semi-open domain condition

    图  6  传输效率随径向偏移距离变化的曲线

    Figure  6.  Change curve of transmission efficiency with radial offset distance

    图  7  混合电磁感应的半开域耦合

    Figure  7.  Hybrid electromagnetic induction in a semi-open domain coupling

    图  8  功率比与路侧输出电压的关系曲线

    Figure  8.  Relationship curve between power ratio and roadside output voltage

    图  9  基于EEMD的地磁扰动信号预处理流程

    Figure  9.  Flow of geomagnetic disturbance signal preprocessing based on EEMD

    图  10  获得i(t)的过程框图

    Figure  10.  Process diagram of i(t)

    图  11  基于EEMD的地磁扰动信号预处理

    Figure  11.  Geomagnetic disturbance signal preprocessing based on EEMD

    图  12  双地磁传感器位置布置

    Figure  12.  Position layout of dual geomagnetic sensors

    图  13  双地磁传感器采集某车辆的地磁扰动信息

    Figure  13.  Geomagnetic disturbance information of vehicle collected by dual ground magnetic sensors

    图  14  基于EEMD滤波的4种典型车型地磁扰动曲线

    Figure  14.  Geomagnetic disturbance curves of 4 typical vehicle models based on EEMD filtering

    图  15  地磁扰动曲线的特征向量图谱

    Figure  15.  Feature vector map of geomagnetic curve

    图  16  混合电磁感应单元电路试验

    Figure  16.  Experiment on hybrid electromagnetic unit circuit

    图  17  电容极板间的电场强度分布

    Figure  17.  Distribution of electric field strength between capacitor plates

    图  18  电感线圈间的磁感应强度分布

    Figure  18.  Distribution of magnetic induction intensity between inductor coils

    图  19  车载侧输入电压和路侧输出谐振电流波形

    Figure  19.  Waveforms of onboard input voltage and roadside output resonance current

    图  20  动极板偏移距离与能量感应传输效率的变化曲线

    Figure  20.  Change curves of moving plate offset distance and energy induction transmission efficiency

    图  21  地磁场感应单元测试场景

    Figure  21.  Geomagnetic field induction unit testing scenario

    图  22  不同车辆的地磁扰动曲线及其特征向量对比

    Figure  22.  Comparison of geomagnetic disturbance curves and their characteristic vectors for different vehicles

    表  1  典型测试车辆的外形尺寸

    Table  1.   Dimensions of typical test vehicles mm

    序号 车身型式 外形尺寸:长×宽×高
    1 小型三厢轿车 4 300×1 705×1 460
    2 中型两厢轿车 4 733×1 839×1 673
    3 中型厢式货车 6 995×2 420×3 650
    4 团体客车 10 490×2 500×3 600
    下载: 导出CSV

    表  2  混合电磁感应电路各元件的参数值

    Table  2.   Parameters of hybrid electromagnetic circuit

    结构参数 数值 结构参数 数值
    Cf1/nF 4.26 C2/pF 394.7
    Cf2/nF 5.18 CS/pF 4.5
    Lf1/μH 16.53 M12/μH 58.18
    Lf2/μH 13.6 N1 56
    L1/μH 843.27 N2 12
    L2/μH 178.42 d/mm 150
    C1/pF 83.51 h/mm 180
    下载: 导出CSV
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出版历程
  • 收稿日期:  2024-03-27
  • 网络出版日期:  2024-09-26
  • 刊出日期:  2024-08-28

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