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带挡油坝结构的轴向环下润滑流动与流量分配特性

盖泽鹏 覃经文 姜会庆 曹逸韬 胡剑平 吕亚国 刘振侠

盖泽鹏, 覃经文, 姜会庆, 等. 带挡油坝结构的轴向环下润滑流动与流量分配特性[J]. 航空动力学报, 2026, 41(X):20250427 doi: 10.13224/j.cnki.jasp.20250427
引用本文: 盖泽鹏, 覃经文, 姜会庆, 等. 带挡油坝结构的轴向环下润滑流动与流量分配特性[J]. 航空动力学报, 2026, 41(X):20250427 doi: 10.13224/j.cnki.jasp.20250427
Gai Zepeng, Qin Jingwen, Jiang Huiqing, et al. Flow and flow-rate distribution characteristics of axial under-race lubrication with oil dam structure[J]. Journal of Aerospace Power, 2026, 41(X):20250427 doi: 10.13224/j.cnki.jasp.20250427
Citation: Gai Zepeng, Qin Jingwen, Jiang Huiqing, et al. Flow and flow-rate distribution characteristics of axial under-race lubrication with oil dam structure[J]. Journal of Aerospace Power, 2026, 41(X):20250427 doi: 10.13224/j.cnki.jasp.20250427

带挡油坝结构的轴向环下润滑流动与流量分配特性

doi: 10.13224/j.cnki.jasp.20250427
基金项目: 国家科技重大专项(J2019-Ⅲ-0023-0067)
详细信息
    作者简介:

    盖泽鹏(1997-),男,博士生,主要从事航空发动机滑油系统和空气系统研究。E-mail:gaizp@mail.nwpu.edu.cn

    通讯作者:

    胡剑平(1984-),男,副教授,博士,主要从事航空发动机滑油系统和空气系统研究。E-mail:hujp@nwpu.edu.cn

  • 中图分类号: V233.4

Flow and flow-rate distribution characteristics of axial under-race lubrication with oil dam structure

  • 摘要:

    为探究提升航空发动机滑油系统润滑效果、实现多点位按需精确润滑的设计方法,提出了一种带挡油坝的轴向环下润滑结构,对其内部的油气两相流动过程和滑油流量分配特性开展了数值研究,在验证数值方法准确性的基础上,分析了供油流量、转速、供油温度和挡油坝周向夹角对花键和轴承的润滑流量及其分配比的影响规律,并揭示了影响因素的作用机制。结果表明:滑油在旋转离心作用下形成具有显著分相流动特征的连续油膜,经挡油坝分隔后输送至轴承和花键。在不同工况下,花键和轴承的流量分配比与挡油坝周向夹角比的相对偏差在6%以内,表现出良好的一致性。挡油坝周向夹角比越大,在初始阶段更多的滑油会滞留在收油腔内,导致出口流量减小;在稳定阶段出口流量比随挡油坝周向夹角比呈近似等比例线性变化,偏差最大为4.72%。相关研究验证了在不同工况下通过调节挡油坝周向夹角来控制流量分配关系的有效性,较好地实现了同时对轴承和花键按需精确润滑的要求。

     

  • 图 1  轴向环下润滑收油试验系统示意图

    Figure 1.  Diagram of oil capture test system for axial under-race lubrication

    图 2  轴向环下润滑的试验段结构示意图

    Figure 2.  Diagram of test section structure for axial under-race lubrication

    图 3  轴向环下润滑数值计算模型

    Figure 3.  Computational model for axial under-race lubrication

    图 4  不同挡油坝周向夹角的收油环计算域

    Figure 4.  Computational domain for oil capture rings at different circumferential angle of oil dam

    图 5  轴向环下润滑模型的计算网格

    Figure 5.  Computational grids of axial under-race lubrication model

    图 6  非定常计算的时间步长敏感性验证

    Figure 6.  Time step sensitivity verification of unsteady computation

    图 7  数值计算方法的准确性验证

    Figure 7.  Accuracy verification of numerical computation method

    图 8  轴向环下润滑内部滑油流动过程

    Figure 8.  Oil flow process within axial under-race lubrication

    图 9  收油腔内壁面滑油流动过程

    Figure 9.  Oil flow process on the wall within oil capture chamber

    图 10  轴向环下润滑内部油气两相分布

    Figure 10.  Distribution of oil-gas two-phase flow within axial under-race lubrication

    图 11  不同供油流速下出口滑油流量随时间的变化情况

    Figure 11.  Variation of outlet oil flow rate with time at different oil flow rates

    图 12  花键和轴承润滑的出口滑油流量随供油流速的变化关系

    Figure 12.  Variation of spline and bearing outlet oil flow rate with oil flow velocities

    图 13  花键和轴承润滑的滑油流量比随供油流速的变化关系

    Figure 13.  Variation of spline and bearing oil flow rate ratio with oil flow velocities

    图 14  不同转速下出口滑油流量随时间的变化情况

    Figure 14.  Variation of outlet oil flow rate with time at different rotational speeds

    图 15  花键和轴承润滑的出口滑油流量随转速的变化关系

    Figure 15.  Variation of spline and bearing outlet oil flow rate with rotational speeds

    图 16  花键和轴承润滑的滑油流量比随转速的变化关系

    Figure 16.  Variation of spline and bearing oil flow rate ratio with rotational speeds

    图 17  不同供油温度下出口滑油流量随时间的变化情况

    Figure 17.  Variation of outlet oil flow rate with time at different oil temperature

    图 18  花键和轴承润滑的出口滑油流量随供油温度的变化关系

    Figure 18.  Variation of spline and bearing outlet oil flow rate with oil temperature

    图 19  花键和轴承润滑的滑油流量比随供油温度的变化关系

    Figure 19.  Variation of spline and bearing oil flow rate ratio oil temperature

    图 20  不同挡油坝周向夹角比下出口滑油流量随时间的变化情况

    Figure 20.  Variation of outlet oil flow rate with time at different circumferential angles of oil dam

    图 21  花键和轴承润滑的滑油流量及其流量比随挡油坝周向夹角比的变化关系

    Figure 21.  Variation of oil flow rate and its ratio for spline and bearing with circumferential angle of oil dam

    图 22  轴承和花键的出口滑油流量及其流量比随供油流量的变化情况

    Figure 22.  Variation of outlet oil flow rate and its ratio for spline and bearing with oil flow rates

    表  1  供油喷嘴流量的重复性测试

    Table  1.   Repeatability testing of oil supply nozzle flow rate

    编号 供油流量/
    (g/s)
    平均流量/
    (g/s)
    标准差/
    (g/s)
    相对
    不确定度/%
    1 36.154 36.255 0.229 0.785
    2 36.568
    3 36.421
    4 36.034
    5 36.097
    下载: 导出CSV

    表  2  未进入轴承和花键滑油流量的重复性测试

    Table  2.   Repeatability testing of oil flow rate not entering bearing and spline

    编号 量筒收集
    流量/(g/s)
    平均流量/
    (g/s)
    标准差/
    (g/s)
    相对
    不确定度/%
    收油
    效率/%
    1 0.413 0.408 0.007 2.133 98.86
    2 0.398 98.91
    3 0.404 98.89
    4 0.416 98.85
    5 0.409 98.87
    下载: 导出CSV

    表  3  计算工况点的边界条件

    Table  3.   Boundary condition of computation cases

    设计参数 供油流速/
    (m/s)
    转速/
    (r/min)
    供油
    温度/℃
    挡油坝周向
    夹角比αβ
    供油流量
    (3×4)组
    15 8000
    14000
    20000
    65 0.184
    18.5
    22.5
    25
    转速
    (3×5)组
    22.5 8000 25
    65
    100
    0.184
    11390
    14000
    17000
    20000
    供油温度
    (3×4)组
    18.5
    22.5
    25
    14000 25 0.184
    65
    100
    125
    挡油坝周向
    夹角(3×3)组
    15
    22.5
    25
    14000 65 0.125
    0.184
    0.268
    下载: 导出CSV

    表  4  4106滑油物性参数

    Table  4.   4106 oil physical parameters

    温度/℃ 密度/(kg/m3 动力黏度/(N·s/m2
    25 966.6 0.0446
    65 937.3 0.0105
    100 911.6 0.0046
    125 893.3 0.0029
    下载: 导出CSV

    表  5  网格无关性验证

    Table  5.   Grid-independent verification

    网格数量/106 轴承润滑流量/(kg/s) 花键润滑流量/(kg/s)
    1.49 0.0632 0.0061
    2.36 0.0611 0.0087
    3.51 0.0596 0.0104
    4.55 0.0590 0.0110
    5.74 0.0589 0.0111
    下载: 导出CSV
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