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多级端齿连接的转子系统损伤评估及动力学分析

付杰 李超 武昌耀 苗淏溟 洪杰 王永锋

付杰, 李超, 武昌耀, 等. 多级端齿连接的转子系统损伤评估及动力学分析[J]. 航空动力学报, 2025, 40(X):20250244 doi: 10.13224/j.cnki.jasp.20250244
引用本文: 付杰, 李超, 武昌耀, 等. 多级端齿连接的转子系统损伤评估及动力学分析[J]. 航空动力学报, 2025, 40(X):20250244 doi: 10.13224/j.cnki.jasp.20250244
FU Jie, LI Chao, WU Changyao, et al. Damage assessment and dynamic characteristics analysis of rotor systems with multi-stage curvic couplings connection[J]. Journal of Aerospace Power, 2025, 40(X):20250244 doi: 10.13224/j.cnki.jasp.20250244
Citation: FU Jie, LI Chao, WU Changyao, et al. Damage assessment and dynamic characteristics analysis of rotor systems with multi-stage curvic couplings connection[J]. Journal of Aerospace Power, 2025, 40(X):20250244 doi: 10.13224/j.cnki.jasp.20250244

多级端齿连接的转子系统损伤评估及动力学分析

doi: 10.13224/j.cnki.jasp.20250244
基金项目: 国家科技重大专项(J2022-Ⅳ-0004-0021,J2022-Ⅶ-0001-0043)
详细信息
    作者简介:

    付杰(1998-),男,博士生,主要从事航空发动机整机结构动力学及安全性。E-mail:fujie0603@buaa.edu.cn

    通讯作者:

    李超(1977-),男,副研究员,博士,主要从事航空发动机整机结构动力学及安全性设计。E-mail:Lichao7715@163.com

  • 中图分类号: V231.96

Damage assessment and dynamic characteristics analysis of rotor systems with multi-stage curvic couplings connection

  • 摘要:

    以典型多级端齿连接结构的燃气发生器转子为研究对象,分析了转子系统的动力学特性,并对转子及端齿在临界转速下的应变能分布特征进行了分析。对连接结构的界面损伤提出了界面损伤评估方法,采用界面接触状态系数、界面接触应力和摩擦功对装配状态下、起动状态下和工作状态下的转子结构系统的界面接触损伤进行了评估。最后对考虑界面损伤的转子动力学特性进行了分析。结果表明:端齿D的界面损伤较为严重,起动状态下端齿D的有效接触区域占比20%;工作状态下:在多重载荷(装配载荷、离心载荷、温度载荷)的作用下,端齿D的有效接触区域占比34.67%,有效接触区域相较起动状态有所改善,但端齿D的摩擦功增加了231.6%,端齿D左右端齿的相对径向变形较大,达0.23~0.25 mm,界面滑移较为严重,对转子的稳健性影响较大;考虑界面接触损伤,转子的1阶和2阶临界转速分别变化了3.11%和0.55%,弯曲临界转速降低了7.77%。

     

  • 图 1  多级端齿连接的燃发器转子结构

    Figure 1.  Structure of the gas generator rotor with multi-stage curvic couplings

    图 2  端齿连接结构受力分析示意图

    Figure 2.  Diagram of force analysis for the curvic couplings

    图 3  燃发转子有限元模型

    Figure 3.  FEM model of the gas generator rotor

    图 4  燃发转子Campbell图

    Figure 4.  Campbell diagram of the gas generator rotor

    图 5  燃发转子各阶模态振型

    Figure 5.  Modal shapes of each order of the gas generator rotor

    图 6  连接结构接触界面迟滞回归曲线

    Figure 6.  Contact interface hysteresis regression curve

    图 7  离心载荷作用下各部件的变形

    Figure 7.  Deformation of each component under centrifugal load

    图 8  离心载荷作用下端齿连接结构径向位置变化

    Figure 8.  Radial position variation of the curvic couplings under centrifugal load

    图 9  燃发转子预紧力大小及施加位置

    Figure 9.  Magnitude and application position of the preload force of the gas generator rotor

    图 10  工作状态下转子温度分布

    Figure 10.  Rotor temperature distribution under working conditions

    图 11  不同状态下的界面接触状态

    Figure 11.  Interface contact states under different conditions

    图 12  工作状态下端齿连接结构径向位置变化

    Figure 12.  Radial position variation of the curvic couplings under working conditions

    图 13  燃发转子动力特性计算模型

    Figure 13.  Calculation model of dynamic characteristics of the gas generator rotor

    图 14  刚度修正模型与接触模型变形弹性线对比

    Figure 14.  Comparison of stiffness correction model and deformation elastic line of contact model

    图 15  考虑连接结构刚度损失时燃发转子Campbell图

    Figure 15.  Campbell diagram of the gas generator rotor considering the stiffness loss of the connection structure

    表  1  各阶临界转速振型下转子-支承应变能占比

    Table  1.   Proportion of strain energy of rotor-support under each critical speed mode %

    振型3#支承4#支承支承转子
    涡轮平动振型30.0655.3385.3914.61
    压气机俯仰振型48.5331.8580.3819.62
    转子1阶弯曲振型3.171.494.6695.34
    下载: 导出CSV

    表  2  各阶临界转速振型下端齿结构应变能占比

    Table  2.   Proportion of strain energy of the curvic couplings under each critical speed mode %

    端齿编号 平动振型 俯仰振型 1阶弯曲振型
    端齿A 0.13 0.57 0.15
    端齿B 0.08 0.26 0.47
    端齿C 0.40 0.32 4.62
    端齿D 0.15 0.06 1.35
    端齿E 0.11 0.03 0.50
    端齿F 0.07 0.01 0.05
    注:此处为端齿结构占整个转子-支承系统应变能的比例,包括支承。
    下载: 导出CSV

    表  3  各端齿连接结构接触界面轴向力变化情况分析

    Table  3.   Analysis of the axial force variation at the contact interface of the curvic couplings

    端齿 装配接触力/N 起动接触力/N 工作接触力/N 起动差异率/% 工作差异率/%
    A 314362 231259 231940 −26.44 −26.22
    B 310478 239136 239406 −22.98 −22.89
    C 307021 231808 232097 −24.50 −24.40
    D 88917 51108 46793 −42.52 −47.37
    E 84116 27641 26584 −67.14 −68.40
    F 84664 32099 28402 −62.09 −66.45
    下载: 导出CSV

    表  4  各端齿连接结构最大接触应力分析

    Table  4.   Analysis of the maximum contact stress of curvic couplings MPa

    端齿装配状态起动状态工作状态
    A319.16132.96143.52
    B136.4592.15991.699
    C111.99118.46114.31
    D32.67365.33950.202
    E50.53325.9725.828
    F41.92639.5527.751
    下载: 导出CSV

    表  5  各端齿连接结构摩擦功分析

    Table  5.   Analysis of friction work of curvic couplings

    端齿 起动状态 工作状态
    滑移距离/
    10−2 mm
    摩擦功/
    (kJ/m2
    滑移距离/
    10−2 mm
    摩擦功/
    (kJ/m2
    A
    B 7.797 26.73 7.667 26.16
    C 8.465 29.86 7.987 29.39
    D 10.225 5.32 25.342 17.64
    E 4.616 2.94 4.763 3.00
    F 3.840 2.66 4.685 2.90
    下载: 导出CSV

    表  6  端齿界面刚度损失修正

    Table  6.   Correction of stiffness loss at the curvic couplings interface

    端齿 接触状态
    系数/%
    刚度
    损失/%
    原始刚度/
    MPa
    修正
    系数/%
    修正刚度/
    MPa
    A 100 110 110
    B 93.02 6.98 111 93.02 103.25
    C 80.48 19.52 112 80.48 90.138
    D 34.67 65.33 181 34.67 62.753
    E 61.04 38.96 181 61.04 110.48
    F 55.85 44.15 181 55.85 101.09
    下载: 导出CSV

    表  7  各阶临界转速振型下转子-支承应变能占比

    Table  7.   Strain energy proportion of rotor-support under each critical speed mode

    模态
    振型
    考虑刚度损失/% 无刚度损失/%
    支承
    应变能
    转子
    应变能
    支承
    应变能
    转子
    应变能
    涡轮平动 85.02 14.98 85.39 14.61
    压气机俯仰 80.18 19.82 80.38 19.62
    1阶弯曲 4.82 95.18 4.66 95.34
    下载: 导出CSV

    表  8  各阶临界转速振型下端齿结构应变能占比对比分析

    Table  8.   Comparison of proportion of strain energy of the curvic couplings under each critical speed mode %

    端齿 平动振型 俯仰振型 1阶弯曲
    无损 有损 无损 有损 无损 有损
    A 0.13 0.13 0.57 0.56 0.15 0.13
    B 0.08 0.09 0.26 0.28 0.47 0.46
    C 0.40 0.47 0.32 0.38 4.62 5.21
    D 0.15 0.38 0.06 0.16 1.35 3.46
    E 0.11 0.16 0.03 0.04 0.50 0.78
    F 0.07 0.12 0.01 0.02 0.05 0.08
    注:此处为端齿结构占整个转子系统应变能的比例,包括支承。
    下载: 导出CSV
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  • 收稿日期:  2025-05-22
  • 网络出版日期:  2025-08-29

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