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载荷环境谱驱动的服役HPT叶片寿命混合预测方法

师利中 张谦

师利中, 张谦. 载荷环境谱驱动的服役HPT叶片寿命混合预测方法[J]. 航空动力学报, 2026, 41(8):20250318 doi: 10.13224/j.cnki.jasp.20250318
引用本文: 师利中, 张谦. 载荷环境谱驱动的服役HPT叶片寿命混合预测方法[J]. 航空动力学报, 2026, 41(8):20250318 doi: 10.13224/j.cnki.jasp.20250318
SHI Lizhong, ZHANG Qian. Load/environment spectrum driven hybrid life prediction approach for in-service HPT blades[J]. Journal of Aerospace Power, 2026, 41(8):20250318 doi: 10.13224/j.cnki.jasp.20250318
Citation: SHI Lizhong, ZHANG Qian. Load/environment spectrum driven hybrid life prediction approach for in-service HPT blades[J]. Journal of Aerospace Power, 2026, 41(8):20250318 doi: 10.13224/j.cnki.jasp.20250318

载荷环境谱驱动的服役HPT叶片寿命混合预测方法

doi: 10.13224/j.cnki.jasp.20250318
详细信息
    作者简介:

    师利中(1984-),男,副教授,硕士,主要研究方向为飞机及发动机健康管理、智能诊断技术。E-mail:lzshi@cauc.edu.cn

  • 中图分类号: V215.5;V232.4

Load/environment spectrum driven hybrid life prediction approach for in-service HPT blades

  • 摘要:

    针对航空发动机高压涡轮叶片在服役中疲劳寿命预测难的问题,编制应力和温度相关的服役载荷/环境谱,基于耐久性和损伤容限理论评估其低周疲劳寿命。基于流-热-固耦合仿真模型结合随机森林代理模型计算了叶片疲劳危险位置服役应力温度时间历程,通过多轴雨流计数方法编制载荷/环境谱。基于细节疲劳额定值法的半经验方法评估涡轮叶片裂纹萌生寿命。基于损伤容限理论和Franc3D平台构建物理模型计算涡轮叶片裂纹扩展寿命。结果表明:叶片疲劳危险位置为前缘根部气膜孔处,该处应力、温度预测误差分别为0.4%和0.71%,两者时序强相关,Pearson系数为0.902。建立的半经验-物理混合模型方法的预测寿命与真实叶片统计的平均寿命相比误差约为8%,可为航空发动机涡轮叶片寿命预测和维修间隔制定提供有价值的参考。

     

  • 图 1  叶片寿命划分方法

    Figure 1.  Blade life classification method

    图 2  叶片寿命计算流程

    Figure 2.  Blade life calculation process

    图 3  叶片和流体域模型

    Figure 3.  Blade and flow field model

    图 4  网格无关性分析结果

    Figure 4.  Mesh independence analysis results

    图 5  Von-Mises等效应力分布云图

    Figure 5.  Von-Mises stress distribution contour map

    图 6  温度分布云图

    Figure 6.  Temperature distribution contour map

    图 7  气膜孔Von-Mises等效应力分布

    Figure 7.  Von-Mises stress distribution in film cooling hole

    图 8  代理模型建模流程

    Figure 8.  Surrogate model development flowchart

    图 9  代理模型测试结果

    Figure 9.  Surrogate model testing results

    图 10  应力和温度时序

    Figure 10.  Stress and temperature time series

    图 11  应力温度重构序列

    Figure 11.  Stress-temperature reconstruction sequence

    图 12  裂纹扩展速率参数

    Figure 12.  Crack propagation rate parameters

    图 13  裂纹扩展仿真流程图

    Figure 13.  Crack propagation simulation flowchart

    图 14  前缘扩展模型示意图

    Figure 14.  Leading edge expansion model schematic

    图 15  裂纹前缘应力强度因子

    Figure 15.  Stress intensity factor at the crack tip

    图 16  裂纹前缘扩展形貌

    Figure 16.  Morphology of crack tip propagation

    图 17  裂纹扩展寿命曲线

    Figure 17.  Crack propagation life curves

    图 18  疲劳寿命计算结果

    Figure 18.  Fatigue life calculation results

    表  1  材料相关属性

    Table  1.   Material-related properties

    温度T/K 弹性模量
    E/GPa
    切变模量
    G/GPa
    泊松比μ
    523.15 168 66.5 0.26
    773.15 161.5 63.5 0.27
    873.15 151.5 59.5 0.27
    1073.15 139.5 52.5 0.29
    下载: 导出CSV

    表  2  稳态边界条件

    Table  2.   Steady-state boundary conditions

    参数 数值
    转速/(rad/s) 1581.9
    进口燃气温度/K 1604.9
    进口冷气温度/K 791.15
    进口压强/kPa 1310.8
    出口压强/kPa 593.9
    冷气流量/(kg/s) 0.1
    下载: 导出CSV

    表  3  载荷/环境谱

    Table  3.   Load/environment spectrum

    循环编号 应力/MPa 温度/K
    (峰值)
    峰值 谷值
    1 678.97 548.12 723.46
    2 706.69 553.31 779.52
    3 754.07 548.97 766.82
    4 725.73 576.69 850.60
    5 783.8 539.45 854.08
    6 804.86 568.87 956.36
    7 825.38 488.58 938.17
    8 678.04 461.4 933.21
    9 547.19 423.85 847.65
    10 699.72 573.2 895.66
    11 875.94 710.71 937.32
    12 884.61 768.78 922.30
    13 896.46 102.92 919.12
    下载: 导出CSV

    表  4  裂纹扩展速率参数拟合公式

    Table  4.   Fitting formula of crack growth rate parameters

    参数 拟合公式
    C 7.0678×10−9exp(−1680/T
    m 3.4953+1.2468×293/T
    下载: 导出CSV

    表  5  维修手册裂纹型损伤极限长度规定

    Table  5.   Damage limit for crack-type in repair manual

    损伤区域 损伤容许极限长度/mm
    叶片前缘 A区 2
    B、C区轴向 1.2
    B区径向 1.5
    C区径向 0.7
    下载: 导出CSV
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  • 收稿日期:  2025-07-07
  • 网络出版日期:  2026-01-18

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