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SR20飞机起落架减震器O/X形橡胶密封圈密封性能对比及优化

谭德强 古一 姜灏 梁泽凯 贺强 胡月 王欣

谭德强, 古一, 姜灏, 等. SR20飞机起落架减震器O/X形橡胶密封圈密封性能对比及优化[J]. 航空动力学报, 2026, 41(2):20250274 doi: 10.13224/j.cnki.jasp.20250274
引用本文: 谭德强, 古一, 姜灏, 等. SR20飞机起落架减震器O/X形橡胶密封圈密封性能对比及优化[J]. 航空动力学报, 2026, 41(2):20250274 doi: 10.13224/j.cnki.jasp.20250274
TAN Deqiang, GU Yi, JIANG Hao, et al. Comparison and optimization of sealing performance between O-ring and X-ring rubber seals for SR20 aircraft landing gear shock absorber[J]. Journal of Aerospace Power, 2026, 41(2):20250274 doi: 10.13224/j.cnki.jasp.20250274
Citation: TAN Deqiang, GU Yi, JIANG Hao, et al. Comparison and optimization of sealing performance between O-ring and X-ring rubber seals for SR20 aircraft landing gear shock absorber[J]. Journal of Aerospace Power, 2026, 41(2):20250274 doi: 10.13224/j.cnki.jasp.20250274

SR20飞机起落架减震器O/X形橡胶密封圈密封性能对比及优化

doi: 10.13224/j.cnki.jasp.20250274
基金项目: 国家自然科学基金(52105132,52205239); 中央高校基本科研业务费专项资金(25CAFUC01002,24CAFUC04006); 四川省科技计划资助(2025YFHZ0309); 四川省通用航空器维修工程技术研究中心资助课题(GAMRC2023ZD04)
详细信息
    作者简介:

    谭德强(1989-),男,副教授,博士,主要从事航空器关键零部件服役行为和适航验证技术研究。E-mail:tdqtx2@163.com

  • 中图分类号: V258.5;TH117.1

Comparison and optimization of sealing performance between O-ring and X-ring rubber seals for SR20 aircraft landing gear shock absorber

  • 摘要:

    针对SR20飞机起落架减震器因国产O形橡胶密封圈替代原厂X形橡胶密封圈引发的密封寿命衰减问题,采用有限元分析方法对比研究O/X形橡胶密封圈密封性能差异。通过建立Mooney-Rivlin超弹性材料模型,模拟压力为5 MPa下动态往复运动工况的密封行为,重点对比分析O/X形橡胶密封圈的应力状态、接触面积和泄漏量等关键指标。同时基于参数化优化设计,对比O形和X形橡胶密封圈不同截面尺寸的密封性能,得出了密封性能最佳的截面尺寸参数。研究结果表明:O形橡胶密封圈的单线结构对比X形橡胶密封圈的多唇结构在动态工况下的密封稳定性更差。

     

  • 图 1  作动缸筒简化三维结构示意图

    Figure 1.  Simplified three-dimensional structural schematic diagram of the actuator cylinder

    图 2  减震器二维模型网格划分

    Figure 2.  Two-dimensional model grid division of the damper

    图 3  O形橡胶圈接触对设置

    Figure 3.  O-ring contact pair setting

    图 4  X形和O形橡胶圈最大Von Mises应力

    Figure 4.  The maximum Von Mises stress of X-ring and O-ring

    图 5  X形和O形橡胶圈最大接触应力

    Figure 5.  The maximum contact stress of X-ring and O-ring

    图 6  O形和X形橡胶圈最大Von Mises应力变化趋势

    Figure 6.  Trend chart of the maximum Von Mises stress of O-ring and X-ring

    图 7  X形橡胶圈密封面接触长度示意图

    Figure 7.  Schematic diagram of X-ring seal surface contact length

    图 8  X形橡胶圈不同横截面高度最大Von Mises应力

    Figure 8.  The maximum Von Mises stress with different cross-sectional heights of the X-ring

    图 9  不同横截面高度最大Von Mises应力变化趋势

    Figure 9.  Variation trend of the maximum Von Mises stress with different cross-section heights

    图 10  不同横截面高度最大接触应力变化趋势

    Figure 10.  Variation trend of the maximum contact stress with different cross-section heights

    图 11  X形橡胶圈接触长度随横截面高度的变化

    Figure 11.  Contact length of the X-ring changing with the cross-sectional height

    图 12  X形橡胶圈泄漏量随横截面高度的变化

    Figure 12.  Leakage amount of the X-ring changing with the cross-sectional height

    图 13  O形橡胶圈不同截面直径最大Von Mises应力

    Figure 13.  The maximum Von Mises stress with different different cross-sectional diameters of O-ring

    图 14  不同截面直径最大Von Mises应力变化趋势

    Figure 14.  Variation trend of the maximum Von Mises stress with different cross-sectional diameters

    图 15  不同截面直径最大接触应力变化趋势

    Figure 15.  Variation trend of the maximum contact stress with different cross-sectional diameters

    图 16  O形橡胶圈接触长度随截面直径的变化

    Figure 16.  Contact length of O-ring changing with the cross-sectional diameter

    图 17  O形橡胶圈泄漏量随截面直径的变化

    Figure 17.  Leakage amount of O-ring changing with the cross-sectional diameter

    表  1  O形橡胶圈材料属性

    Table  1.   O-ring material properties

    材料 密度/
    (kg/m3
    C10/
    MPa
    C01/
    MPa
    不可压缩性
    参数D1/10−9 (1/Pa)
    丁腈橡胶 990 5 1.25 3
    下载: 导出CSV

    表  2  刮油环材料属性

    Table  2.   Scraper ring material properties

    材料 密度/
    (kg/m3
    泊松比 弹性模量/
    MPa
    体积弹性
    模量/MPa
    切变模量/
    MPa
    聚四氟乙烯 2300 0.45 600 2 000 206.9
    下载: 导出CSV

    表  3  O形橡胶圈与X形橡胶圈总接触长度

    Table  3.   Total contact length of O-ring and X-ring mm

    类型 尺寸 总接触长度
    O形橡胶圈 截面直径为3.43 4.30072
    X形橡胶圈 横截面高度为3.43 3.39507
    下载: 导出CSV

    表  4  O形和X形橡胶圈泄漏量

    Table  4.   Leakage amount of O-ring and X-ring

    类型尺寸/mm泄漏量/(mg/s)
    O形橡胶圈截面直径为3.430.0870
    X形橡胶圈横截面高度为3.430.0206
    下载: 导出CSV

    表  5  密封度级别分类

    Table  5.   Classification of sealing degree levels

    级别 名称 泄漏量范围/(mg/s) 典型应用
    T1 经济型密封圈 1000 适用于一般工业设备
    T2 标准型密封圈 ≤100 适用于普通压力容器和管道系统
    T3 紧密型密封圈 ≤10 适用于高压或高温系统,如化工设备
    T4 高紧密型密封圈 ≤1 适用于高精度设备,如核工设备、部分航空航天设备
    T5 超高紧密型密封圈 ≤0.1 适用于极端环境,如航天器、核反应堆冷却系统等
    下载: 导出CSV
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  • 收稿日期:  2025-06-06
  • 网络出版日期:  2025-11-27

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