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弹性元件对大型可倾瓦轴承静动特性的影响

席文奎 韩强辉 黄天虎 徐建宁 蒋翔俊

席文奎, 韩强辉, 黄天虎, 徐建宁, 蒋翔俊. 弹性元件对大型可倾瓦轴承静动特性的影响[J]. 交通运输工程学报, 2017, 17(3): 83-89.
引用本文: 席文奎, 韩强辉, 黄天虎, 徐建宁, 蒋翔俊. 弹性元件对大型可倾瓦轴承静动特性的影响[J]. 交通运输工程学报, 2017, 17(3): 83-89.
XI Wen-kui, HAN Qiang-hui, HUANG Tian-hu, XU Jian-ning, JIANG Xiang-jun. Influence of elastic element on static and dynamic characteristics of large tilting pad bearing[J]. Journal of Traffic and Transportation Engineering, 2017, 17(3): 83-89.
Citation: XI Wen-kui, HAN Qiang-hui, HUANG Tian-hu, XU Jian-ning, JIANG Xiang-jun. Influence of elastic element on static and dynamic characteristics of large tilting pad bearing[J]. Journal of Traffic and Transportation Engineering, 2017, 17(3): 83-89.

弹性元件对大型可倾瓦轴承静动特性的影响

基金项目: 

国家自然科学基金项目 51405385

陕西省自然科学基金项目 2017JM5095

详细信息
    作者简介:

    席文奎(1982-), 男, 甘肃庆阳人, 西安石油大学副教授, 工学博士, 从事转子动力学研究

  • 中图分类号: U664.21

Influence of elastic element on static and dynamic characteristics of large tilting pad bearing

More Information
    Author Bio:

    XI Wen-kui(1982-), male, associate professor, PhD, +86-29-88382616, xiwenkui@xsy

  • 摘要: 为提高舰船运载机组稳定性, 并有效抑制振动, 在机组推进轴系中采用了一种可倾瓦轴承支点弹性技术(瓦块支点安装有蝶形弹簧), 以某大型燃气轮机为对象, 在轴系四瓦可倾瓦轴承瓦块支点处引入蝶形弹簧结构, 并采用流固热耦合计算模型和轴承多场分析技术, 分析了可倾瓦轴承的温度场、压力场、刚度与阻尼等特性参数, 研究了支点弹性技术对大型可倾瓦轴承摩擦学与动力学特性的影响规律。计算结果表明: 在3 000r·min-1工作转速下, 刚支结构时可倾瓦轴承最大油膜压力为6.5MPa, 弹支结构时最大油膜压力为6.7MPa, 弹支结构相比刚支结构轴承油膜压力略有上升, 此时2种支点结构轴承的温度变化不大, 最高温度分别为98.95℃与98.85℃; 随着转速的增大, 2种支点结构可倾瓦轴承的主刚度均呈下降趋势, 而其交叉刚度只在±0.1MN·m-1范围内变化; 在3 000r·min-1下, 弹支结构轴承主刚度为3.5GN·m-1, 主阻尼为6MN·s·m-1, 相比刚支结构轴承主刚度提高了59%, 主阻尼提高了39%。可见: 可倾瓦轴承采用瓦块支点弹性技术, 轴承温度变化不大, 最高油膜压力略有增加, 轴承主刚度和主阻尼明显提高, 这对增加稳定性和抑制振动十分有利。

     

  • 图  1  瓦块支点弹性元件

    Figure  1.  Elastic element of pad pivot

    图  2  弹性元件工作过程

    Figure  2.  Operating process of elastic element

    图  3  轴承结构

    Figure  3.  Bearing structure

    图  4  刚支结构轴承2#瓦油膜压力分布

    Figure  4.  Oil film pressure distribution of 2# pad of rigid pivot tilting pad bearing

    图  5  刚支结构轴承3#瓦油膜压力分布

    Figure  5.  Oil film pressure distribution of 3# pad of rigid pivot tilting pad bearing

    图  6  弹支结构轴承2#瓦油膜压力分布

    Figure  6.  Oil film pressure distribution of 2# pad of spring pivot tilting pad bearing

    图  7  弹支结构轴承3#瓦油膜压力分布

    Figure  7.  Oil film pressure distribution of 3# pad of spring pivot tilting pad bearing

    图  8  刚支结构轴承2#瓦油膜温度分布

    Figure  8.  Oil film temperature distribution of 2# pad of rigid pivot tilting pad bearing

    图  9  刚支结构轴承3#瓦油膜温度分布

    Figure  9.  Oil film temperature distribution of 3# pad of rigid pivot tilting pad bearing

    图  10  弹支结构轴承2#瓦油膜温度分布

    Figure  10.  Oil film temperature distribution of 2# pad of spring pivot tilting pad bearing

    图  11  弹支结构轴承3#瓦油膜温度分布

    Figure  11.  Oil film temperature distribution of 3# pad of spring pivot tilting pad bearing

    图  12  轴承油膜刚度曲线

    Figure  12.  Oil film stiffness curves of journal bearing

    图  13  轴承油膜阻尼曲线

    Figure  13.  Oil film damping curves of journal bearing

    表  1  轴承参数

    Table  1.   Bearing parameters

    下载: 导出CSV

    表  2  弹性元件主要参数

    Table  2.   Main parameters of elastic element

    下载: 导出CSV
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  • 收稿日期:  2016-12-25
  • 刊出日期:  2017-06-25

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