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基于磨粒分析的球轴承及转子组件转动微动磨损特性

杨景来 邢春生 佟文伟 刘东旭 朗宏 刘明坤

杨景来, 邢春生, 佟文伟, 等. 基于磨粒分析的球轴承及转子组件转动微动磨损特性[J]. 航空动力学报, 2026, 41(1):20240584 doi: 10.13224/j.cnki.jasp.20240584
引用本文: 杨景来, 邢春生, 佟文伟, 等. 基于磨粒分析的球轴承及转子组件转动微动磨损特性[J]. 航空动力学报, 2026, 41(1):20240584 doi: 10.13224/j.cnki.jasp.20240584
YANG Jinglai, XING Chunsheng, TONG Wenwei, et al. Rotational fretting wear characteristic of ball bearings and rotor assemblies based on wear particles analysis[J]. Journal of Aerospace Power, 2026, 41(1):20240584 doi: 10.13224/j.cnki.jasp.20240584
Citation: YANG Jinglai, XING Chunsheng, TONG Wenwei, et al. Rotational fretting wear characteristic of ball bearings and rotor assemblies based on wear particles analysis[J]. Journal of Aerospace Power, 2026, 41(1):20240584 doi: 10.13224/j.cnki.jasp.20240584

基于磨粒分析的球轴承及转子组件转动微动磨损特性

doi: 10.13224/j.cnki.jasp.20240584
基金项目: 航空动力基础研究项目
详细信息
    作者简介:

    杨景来(1989-),男,工程师,硕士。E-mail:yangjinglai1989@aliyun.com

  • 中图分类号: V233.4+53

Rotational fretting wear characteristic of ball bearings and rotor assemblies based on wear particles analysis

  • 摘要:

    为研究燃气涡轮发动机球轴承及转子组件的转动微动磨损特性,综合利用光谱、自动磨粒、铁谱及能谱分析方法对燃气涡轮发动机滑油磨粒进行分析。结果表明:磨粒总量及尺寸与球轴承及转子组件的磨损进程存在对应关系,即磨粒随磨损量和磨损形式的变化而改变,并在磨损后期急剧增长;内圈相对轴的转动是导致轴承及转子组件转动微动磨损的主要原因,其特征磨粒为平片状疲劳磨粒,且球轴承及转子组件的磨损具有系统依赖性。结论:在摩擦力及内圈高温度梯度等作用下,内圈相对轴发生转动,使定距套、轴表面、锁紧螺母端面先后出现转动微动磨损,并在非承力半圈滚道底部形成碾压痕迹。所提出的磨粒分析流程也可为其他燃气涡轮发动机的球轴承及转子组件转动微动磨损特性研究提供参考。

     

  • 图 1  球轴承及转子组件

    Figure 1.  Ball bearings and rotor assemblies

    图 2  光谱结果

    Figure 2.  Spectral analysis results

    图 3  自动磨粒结果

    Figure 3.  Laser net fines analysis results

    图 4  疲劳磨粒尺寸分布

    Figure 4.  Size distribution of fatigue particles

    图 5  铁谱结果(×100)

    Figure 5.  Ferrography analysis results (×100)

    图 6  铁谱结果(×200)

    Figure 6.  Ferrography analysis results (×200)

    图 7  轴承及转子组件磨损形貌

    Figure 7.  Wear morphology of bearing and rotor assemblies

    图 8  温度云图

    Figure 8.  Temperature cloud map

    图 9  轴表面损伤区

    Figure 9.  Damage zone on surface of the shaft

    图 10  磨损位置示意图

    Figure 10.  Schematic diagram of wear location

    图 11  平片状疲劳磨粒(×500)

    Figure 11.  Flat platelets (×500)

    图 12  磨粒分析流程

    Figure 12.  Analysis process of wear particles

    图 13  燃气涡轮发动机故障实例

    Figure 13.  Example of gas turbine

    表  1  轴承及转子组件材料

    Table  1.   Bearings and rotor assemblies material

    零件名称材料
    内、外圈、滚珠Cr4Mo4V
    保持架40CrNiMoA
    定距套40CrNiMoA
    锁紧螺母40CrNiMoA
    0Cr17Ni4Cu4Nb
    下载: 导出CSV

    表  2  30 h能谱分析结果

    Table  2.   Energy spectrum analysis results at 30 h

    磨粒质量分数/%
    FeCrNiMoMnCu
    10.71.70.30.6
    20.91.80.10.8
    30.61.60.30.8
    415.44.00.40.33.4
    下载: 导出CSV

    表  3  50 h能谱分析结果

    Table  3.   Energy spectrum analysis results at 50 h

    磨粒质量分数/%
    FeCrNiMoMnV
    10.91.20.10.5
    20.91.30.20.4
    34.44.10.11.1
    下载: 导出CSV

    表  4  60 h能谱分析结果

    Table  4.   Energy spectrum analysis results at 60 h

    磨粒质量分数/%
    FeCrNiMoMnCuNb
    10.71.70.20.4
    20.91.80.30.4
    30.81.80.20.31.2
    419.519.352.12.84.8
    518.718.552.83.35.7
    61.51.01.4
    715.44.70.75.10.6
    下载: 导出CSV

    表  5  110 h能谱分析结果

    Table  5.   Energy spectrum analysis results at 110 h

    磨粒质量分数/%
    FeCrNiMoMnCuNb
    10.81.90.20.7
    20.91.70.10.6
    315.64.74.10.8
    下载: 导出CSV

    表  6  220 h能谱分析结果

    Table  6.   Energy spectrum analysis results at 220 h

    磨粒质量分数/%
    FeCrNiMoMn
    10.91.50.10.8
    20.91.30.30.8
    31.01.30.20.8
    下载: 导出CSV
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  • 收稿日期:  2024-08-20
  • 网络出版日期:  2025-07-06

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