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子系统参数对双层隔振系统隔振特性的影响

陈俊 丁杰 闫兵 王永胜 董大伟 华春蓉

陈俊, 丁杰, 闫兵, 王永胜, 董大伟, 华春蓉. 子系统参数对双层隔振系统隔振特性的影响[J]. 交通运输工程学报, 2018, 18(3): 114-128. doi: 10.19818/j.cnki.1671-1637.2018.03.012
引用本文: 陈俊, 丁杰, 闫兵, 王永胜, 董大伟, 华春蓉. 子系统参数对双层隔振系统隔振特性的影响[J]. 交通运输工程学报, 2018, 18(3): 114-128. doi: 10.19818/j.cnki.1671-1637.2018.03.012
CHEN Jun, DING Jie, YAN Bing, WANG Yong-sheng, DONG Da-wei, HUA Chun-rong. Effect of subsystem parameters on vibration isolation characteristics of two-stage vibration isolation system[J]. Journal of Traffic and Transportation Engineering, 2018, 18(3): 114-128. doi: 10.19818/j.cnki.1671-1637.2018.03.012
Citation: CHEN Jun, DING Jie, YAN Bing, WANG Yong-sheng, DONG Da-wei, HUA Chun-rong. Effect of subsystem parameters on vibration isolation characteristics of two-stage vibration isolation system[J]. Journal of Traffic and Transportation Engineering, 2018, 18(3): 114-128. doi: 10.19818/j.cnki.1671-1637.2018.03.012

子系统参数对双层隔振系统隔振特性的影响

doi: 10.19818/j.cnki.1671-1637.2018.03.012
基金项目: 

国家自然科学基金项目 51405399

详细信息
    作者简介:

    陈俊(1989-), 男, 湖南长沙人, 株洲中车时代电气股份有限公司工程师, 工学博士, 从事机械系统振动噪声控制研究

    通讯作者:

    董大伟(1963-), 男, 四川成都人, 西南交通大学教授, 工学博士

  • 中图分类号: U270.11

Effect of subsystem parameters on vibration isolation characteristics of two-stage vibration isolation system

More Information
    Author Bio:

    CHEN Jun(1989-), male, engineer, PhD, chj20081498@163.com

    DONG Da-wei (1963-) male, professor, PhD, dwdong@home.swjtu.edu.cn

  • 摘要: 为了阐明子系统参数对双层隔振系统隔振特性的影响, 建立了针对带子系统的双层隔振系统的三自由度动力学模型; 推导了一、二级主系统与子系统振幅比的解析式; 分析了3种振幅比随子系统质量比、固有频率比和阻尼比的变化规律; 给出了子系统充当双层隔振系统吸振器时最优参数的解析解和数值精确解; 以中国首批内燃动车动力包为研究对象, 探讨了散热器子系统的刚度、阻尼和质量对动力包双层隔振系统隔振性能以及柴油发电机组和散热器本身振动烈度的影响规律; 得到了最优散热器隔振器刚度的动力包双层隔振系统样机, 并进行了振动试验。试验结果表明: 散热器隔振器刚度大于拐点处刚度1.5倍会严重恶化子系统的振动情况, 其阻尼损耗系数取0.24左右能有效抑制双层隔振系统力传递率和振动烈度比的峰值, 取较大的散热器质量能有效提高双层隔振系统的隔振性能, 减小机组和散热器本身的振动烈度; 经过设计后, 停机工况下二级隔振器最大动反力减小50%, 常规工况下二级隔振器的实测最大动反力为296N, 优于同类水平, 常规工况下机组与散热器实测振动烈度最大值分别为15.45、4.97mm·s-1, 水平优秀。可见, 取较大的子系统质量和阻尼, 并将其视为双层隔振系统的吸振器进行优化设计, 可使双层隔振系统在柴油机启停机工况和常规工况下都具备较优的动力学性能。

     

  • 图  1  三自由度动力学模型

    Figure  1.  3-DOF dynamics model

    图  2  fs-T2-g关系的三维效果

    Figure  2.  3 Deffect of fs-T2-g relationship

    图  3  不同fs取值的T2-g关系的二维效果

    Figure  3.  2 Deffects of T2-g relationship with different values of fs

    图  4  fs-T1-g关系的三维效果

    Figure  4.  3 Deffect of fs-T1-g relationship

    图  5  不同fs取值的T1-g关系的二维效果

    Figure  5.  2 Deffects of T1-g relationship with different values of fs

    图  6  fs-Ts-g关系的三维效果

    Figure  6.  3 Deffect of fs-Ts-g grelationship

    图  7  不同fs取值的Ts-g关系的二维效果

    Figure  7.  2 Deffects of Ts-g relationship with different values of fs

    图  8  ξs-T2-g关系的三维效果

    Figure  8.  3 Deffect of fs-T2-g relationship

    图  9  不同ξs取值的T2-g关系的二维效果

    Figure  9.  2 Deffects of T2-g relationship with different values ofξs

    图  10  ξs-T1-g关系的三维效果

    Figure  10.  3 Deffect of ξs-T1-g relationship

    图  11  不同ξs取值的T1-g关系的二维效果

    Figure  11.  2 Deffects of T1-g relationship with different values of ξs

    图  12  ξs-Ts-g关系的三维效果

    Figure  12.  3 Deffect of ξs-Ts-g relationship

    图  13  不同ξs取值的Ts-g关系的二维效果

    Figure  13.  2 Deffects of Ts-g relationship with different values of ξs

    图  14  解析解与数值精确解对比

    Figure  14.  Comparison of analytical and numerical exact solutions

    图  15  us-T2-g关系的三维效果

    Figure  15.  3 Deffect of us-T2-g relationship

    图  16  不同us取值的T2-g关系的二维效果

    Figure  16.  2 Deffects of T2-g relationship with different values of us

    图  17  us-T1-g关系的三维效果

    Figure  17.  3 Deffect of us-T1-g relationship

    图  18  不同us取值的T1-g关系的二维效果

    Figure  18.  2 Deffects of T1-g relationship with different values of us

    图  19  us-Ts-g关系的三维效果

    Figure  19.  3 Deffect of us-Ts-g relationship

    图  20  不同us取值的Ts-g关系的二维效果

    Figure  20.  2 Deffects of Ts-g relationship with different values of us

    图  21  动力包双层隔振系统

    Figure  21.  Power pack TSVIS

    图  22  内燃动车动力包双层隔振系统动力学模型

    Figure  22.  Dynamics model of diesel railcar power pack TSVIS

    图  23  ks-T-f0关系的三维效果

    Figure  23.  3 Deffect of ks-T-f0 relationship

    图  24  不同ks取值的T-f0关系的二维效果

    Figure  24.  2 Deffects of T-f0 relationship with different values of ks

    图  25  ks-V1-f0关系的三维效果

    Figure  25.  3 Deffect of ks-V1-f0 relationship

    图  26  不同ks取值的V1-f0关系的二维效果

    Figure  26.  2 Deffects of V1-f0 relationship with different values of ks

    图  27  ks-Vs-f0关系的三维效果

    Figure  27.  3 Deffect of ks-Vs-f0 relationship

    图  28  不同ks取值的Vs-f0关系的二维效果

    Figure  28.  2 Deffects of Vs-f0 relationship with different values of ks

    图  29  ηs-T-f0关系的三维效果

    Figure  29.  3 Deffect of ηs-T-f0 relationship

    图  30  不同ηs取值的T-f0关系的二维效果

    Figure  30.  2 Deffects of T-f0 relationship with different values of ηs

    图  31  ηs-V1-f0关系的三维效果

    Figure  31.  3 Deffect of ηs-V1-f0 relationship

    图  32  不同ηs取值的V1-f0关系的二维效果

    Figure  32.  2 Deffects of V1-f0 relationship with different values of ηs

    图  33  ηs-Vs-f0关系的三维效果

    Figure  33.  3 Deffect of ηs-Vs-f0 relationship

    图  34  不同ηs取值的Vs-f0关系的二维效果

    Figure  34.  2 Deffects of Vs-f0 relationship with different values of ηs

    图  35  ms-T-f0关系的三维效果Fig 35 3 Deffect of ms-T-f0 relationship

    图  36  不同ms取值的T-f0关系的二维效果

    Figure  36.  2 Deffects of T-f0 relationship with different values of ms

    图  37  ms-V1-f0关系的三维效果

    Figure  37.  3 Deffect of ms-V1-f0 relationship

    图  38  不同ms取值的V1-f0关系的二维效果

    Figure  38.  2 Deffects of V1-f0 relationship with different values of ms

    图  39  ms-Vs-f0关系的三维效果

    Figure  39.  3 Deffect of ms-Vs-f0 relationship

    图  40  不同ms取值的Vs-f0关系的二维效果

    Figure  40.  2 Deffects of Vs-f0 relationship with different values of ms

    图  41  动力包振动测试现场

    Figure  41.  Test site of power pack vibration

    图  42  动力包各部件位移曲线

    Figure  42.  Displacement curves of various components of power pack

    图  43  动力包双层隔振系统动力学性能指标

    Figure  43.  Dynamics performance indicators of power pack TSVIS

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  • 收稿日期:  2017-11-25
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