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车辆悬挂弹簧故障检测的能量传递特性比较法

丁建明 林建辉 赵洁 黄晨光

丁建明, 林建辉, 赵洁, 黄晨光. 车辆悬挂弹簧故障检测的能量传递特性比较法[J]. 交通运输工程学报, 2013, 13(4): 51-55. doi: 10.19818/j.cnki.1671-1637.2013.04.008
引用本文: 丁建明, 林建辉, 赵洁, 黄晨光. 车辆悬挂弹簧故障检测的能量传递特性比较法[J]. 交通运输工程学报, 2013, 13(4): 51-55. doi: 10.19818/j.cnki.1671-1637.2013.04.008
DING Jian-ming, LIN Jian-hui, ZHAO Jie, HUANG Chen-guang. Comparison method of energy transfer characteristics for fault detection of vehicle suspension spring[J]. Journal of Traffic and Transportation Engineering, 2013, 13(4): 51-55. doi: 10.19818/j.cnki.1671-1637.2013.04.008
Citation: DING Jian-ming, LIN Jian-hui, ZHAO Jie, HUANG Chen-guang. Comparison method of energy transfer characteristics for fault detection of vehicle suspension spring[J]. Journal of Traffic and Transportation Engineering, 2013, 13(4): 51-55. doi: 10.19818/j.cnki.1671-1637.2013.04.008

车辆悬挂弹簧故障检测的能量传递特性比较法

doi: 10.19818/j.cnki.1671-1637.2013.04.008
基金项目: 

国家863计划项目 2011AA110501

国家自然科学基金项目 61134002

“十一五”国家科技支撑计划项目 2009BAG12A01

详细信息
    作者简介:

    丁建明(1981-), 男, 四川平昌人, 西南交通大学助理研究员, 工学博士, 从事车辆的故障建模、非线性非平稳信号处理和故障诊断研究

  • 中图分类号: U279.3

Comparison method of energy transfer characteristics for fault detection of vehicle suspension spring

More Information
    Author Bio:

    DING Jian-ming(1981-), male, assistant researcher, PhD, +86-28-87600843, fdingjianming@126.com

  • 摘要: 利用弹簧刚度对悬挂传递函数的频移特性, 提出一种车辆悬挂弹簧故障动态检测的新方法。对悬挂弹簧安装处的车体和构架垂向振动加速度信号分别进行7层谐波小波包分解, 计算了8个低尺度的能量, 在同一尺度上, 将车体和构架的加速度能量相除得到悬挂的尺度能量传递特性, 提出相邻时段对应悬挂尺度能量传递特性的比较方法, 进行悬挂弹簧的故障检测。检测结果表明: 当悬挂弹簧刚度蜕变时, 其传递特性向高尺度变化, 与检测机理分析得出的传递特性向低频率变化的分析结论一致, 同时能够检测刚度蜕变10%的悬挂故障, 因此, 该方法可靠性高, 具有一定的工程适应性。

     

  • 图  1  车辆振动模型

    Figure  1.  Vibration model of vehicle

    图  2  悬挂传递特性

    Figure  2.  Transfer characteristic of suspension

    图  3  车辆轨道耦合动力学模型

    Figure  3.  Dynamics model of vehicle-track coupling system

    图  4  车速为200km·h-1时车体垂向振动加速度时间历程

    Figure  4.  Time history of car body vertical vibration acceleration at 200km·h-1

    图  5  车速为250km·h-1时车体垂向振动加速度时间历程

    Figure  5.  Time history of car body vertical vibration acceleration at 250km·h-1

    图  6  车速为200km·h-1时构架垂向振动加速度时间历程

    Figure  6.  Time history of frame vertical vibration acceleration at 200km·h-1

    图  7  车速为250km·h-1时构架垂向振动加速度时间历程

    Figure  7.  Time history of frame vertical vibration acceleration at 250km·h-1

    图  8  车速为200km·h-1时不同时段的平均能量传递尺度

    Figure  8.  Average energy transfer scales at different periods and 200km·h-1

    图  9  车速为250km·h-1时不同时段的平均能量传递尺度

    Figure  9.  Average energy transfer scales at different periods and 250km·h-1

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出版历程
  • 收稿日期:  2013-03-25
  • 刊出日期:  2013-08-25

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