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航空发动机转子在突加基础冲击载荷下的振动特性试验

聂卫健 杨晓光 唐广 李坚 王金舜

聂卫健, 杨晓光, 唐广, 等. 航空发动机转子在突加基础冲击载荷下的振动特性试验[J]. 航空动力学报, 2025, 40(3):20240462 doi: 10.13224/j.cnki.jasp.20240462
引用本文: 聂卫健, 杨晓光, 唐广, 等. 航空发动机转子在突加基础冲击载荷下的振动特性试验[J]. 航空动力学报, 2025, 40(3):20240462 doi: 10.13224/j.cnki.jasp.20240462
NIE Weijian, YANG Xiaoguang, TANG Guang, et al. Vibration characteristics experiment of aero-engine rotor under sudden base impact load[J]. Journal of Aerospace Power, 2025, 40(3):20240462 doi: 10.13224/j.cnki.jasp.20240462
Citation: NIE Weijian, YANG Xiaoguang, TANG Guang, et al. Vibration characteristics experiment of aero-engine rotor under sudden base impact load[J]. Journal of Aerospace Power, 2025, 40(3):20240462 doi: 10.13224/j.cnki.jasp.20240462

航空发动机转子在突加基础冲击载荷下的振动特性试验

doi: 10.13224/j.cnki.jasp.20240462
基金项目: 中国航空发动机集团科技创新平台基金项目(CXPT-2022-031)
详细信息
    作者简介:

    聂卫健(1991-),男,高级工程师,博士生,主要从事航空发动机转子动力学研究工作。E-mail:nwjxj@126.com

  • 中图分类号: V231.96

Vibration characteristics experiment of aero-engine rotor under sudden base impact load

  • 摘要:

    针对航空发动机转子在服役过程中受到突加基础冲击载荷的振动响应特性复杂问题,基于动力学相似原则和结构特征相似原则设计了全尺寸转子系统试验器,提出采用高速电动机驱动在振动与冲击试验台上开展突加基础冲击载荷作用下航空发动机转子系统振动响应特性试验的方法,获取了轴向、垂向冲击载荷下转子的振动响应特征,通过试验研究了冲击载荷参数(冲击转速、冲击载荷大小、冲击方向及冲击脉宽)对转子振动响应的影响。试验结果表明:受到突加基础冲击载荷瞬时转子振动响应瞬时大幅增加,随后衰减至冲击前的稳定状态;瞬时振动响应的频率成分复杂,除基频外,存在不规律的其他频率成分;冲击载荷参数对转子振动响应的影响显著,应特别关注垂直方向的振动响应。研究为突加基础冲击载荷下的航空发动机转子振动响应特性分析和结构安全设计提供了参考,具有重要的工程应用价值。

     

  • 图 1  试验器结构

    Figure 1.  Tester structure

    图 2  振动与冲击试验台

    Figure 2.  Vibration and shock table

    图 3  动圈示意图

    Figure 3.  Moving circle diagram

    图 4  安装测试示意图

    Figure 4.  Installation and measurement sketch

    图 5  突加垂向基础冲击载荷下加速度响应

    Figure 5.  Acceleration response under sudden vertical base impact load

    图 6  突加垂向基础冲击载荷下位移响应

    Figure 6.  Displacement response under sudden vertical base impact load

    图 7  突加垂向基础冲击载荷下轴心轨迹

    Figure 7.  Orbits under sudden vertical base impact load

    图 8  突加垂向基础冲击载荷下转子的频率成分

    Figure 8.  Frequency of the rotor under sudden vertical base impact load

    图 9  突加轴向基础冲击载荷下加速度响应

    Figure 9.  Acceleration response under sudden axial base impact load

    图 10  突加轴向基础冲击载荷下位移响应

    Figure 10.  Displacement response under sudden axial base impact load

    图 11  突加轴向基础冲击载荷下转子的轴心轨迹

    Figure 11.  Orbits of the rotor under sudden axial base impact load

    图 12  突加轴向基础冲击载荷下转子的频率成分

    Figure 12.  Frequency of the rotor under sudden axial base impact load

    图 13  不同冲击转速下转子的轴心轨迹

    Figure 13.  Orbits of the rotor at different speeds

    图 14  不同冲击转速下转子的频率成分

    Figure 14.  Frequency of the rotor at different speeds

    图 15  不同大小突加基础冲击载荷下转子的轴心轨迹

    Figure 15.  Orbits of the rotor under different sudden base impact load values

    图 16  不同大小突加基础冲击载荷下转子的频率成分

    Figure 16.  Frequency of the rotor under different sudden base impact load values

    图 17  不同脉宽突加基础冲击载荷下转子的轴心轨迹

    Figure 17.  Orbits of the rotor under different pulse widths

    图 18  不同脉宽突加基础冲击载荷下转子的频率成分

    Figure 18.  Frequency of the rotor under different pulse widths

    表  1  临界转速计算结果对比

    Table  1.   Comparison results of the critical speeds

    阶次 临界转速/(r/min) 设计误差/%
    真实转子 模拟转子
    第1阶 0.278n 0.264n 2.50
    第2阶 0.515n 0.517n 0.30
    第3阶 1.465n 1.488n 3.98
    下载: 导出CSV

    表  2  振形计算结果对比

    Table  2.   Comparison results of the mode shapes

    阶次 振型
    真实转子 模拟转子
    第1阶
    第2阶
    第3阶
    下载: 导出CSV

    表  3  试验工况

    Table  3.   Experimental condition

    序号 试验转速/
    (r/min)
    冲击
    方向
    脉宽/ms 载荷大小
    1 0.20n 垂向 6 4g
    2 6g
    3 10g
    4 0.20n 垂向 11 4g
    5 0.20n 轴向 6 4g
    6 0.65n 垂向 6 4g
    7 1.00n 垂向 6 4g
    下载: 导出CSV

    表  4  不同冲击转速下受到突加基础冲击载荷转子的位移响应

    Table  4.   Displacement response of the rotor under sudden base impact load at different speeds

    试验转速/
    (r/min)
    位移响应/mm
    D1 D2 D3 D4
    0.20n 0.18 0.31 0.22 0.20
    0.65n 0.21 0.35 0.26 0.16
    1.00n 0.22 0.37 0.28 0.13
    下载: 导出CSV

    表  5  不同冲击转速下受到突加基础冲击载荷转子的加速度响应

    Table  5.   Acceleration response of the rotor under sudden base impact load at different speeds

    试验转速/
    (r/min)
    A/g
    A1 A2 A3 A4 A5 A6
    0.20n 3.98 0.98 4.73 1.56 5.27 1.50
    0.65n 6.08 2.64 5.84 1.68 6.16 1.66
    1.00n 6.35 3.08 6.12 1.86 6.35 1.85
    下载: 导出CSV

    表  6  不同大小突加基础冲击载荷下转子的位移响应

    Table  6.   Displacement response of the rotor under different sudden base impact load values

    载荷大小 位移响应/mm
    D1 D2 D3 D4
    4g 0.18 0.31 0.22 0.20
    6g 0.25 0.40 031 0.27
    10g 0.27 0.54 0.38 0.32
    下载: 导出CSV

    表  7  不同大小突加基础冲击载荷下转子的加速度响应

    Table  7.   Acceleration response of the rotor under different sudden base impact load values

    载荷大小 A/g
    A1 A2 A3 A4 A5 A6
    4g 3.98 0.98 4.73 1.56 5.27 1.50
    6g 6.48 1.98 6.80 2.96 6.96 2.31
    10g 10.65 2.64 10.95 4.44 12.60 3.12
    下载: 导出CSV

    表  8  不同突加基础冲击方向载荷下转子的位移响应

    Table  8.   Displacement response of the rotor under different sudden base impact load directions

    冲击方向 位移响应/mm
    D1 D2 D3 D4
    垂向 0.18 0.31 0.22 0.20
    轴向 0.29 0.38 0.25 0.24
    下载: 导出CSV

    表  9  不同突加基础冲击方向载荷下转子的加速度响应

    Table  9.   Acceleration response of the rotor under different sudden base impact load directions

    冲击方向 A/g
    A1 A2 A3 A4 A5 A6
    垂向 3.98 0.98 4.73 1.56 5.27 1.50
    轴向 1.86 0.86 0.76 0.63 1.14 1.00
    下载: 导出CSV

    表  10  不同脉宽突加基础冲击载荷下转子的位移响应

    Table  10.   Displacement response of the rotor under different pulse widths

    脉宽/ms 位移响应/mm
    D1 D2 D3 D4
    6 0.18 0.31 0.22 0.20
    11 0.16 0.28 0.19 0.17
    降低幅度/% 11.11 9.68 13.64 15.00
    下载: 导出CSV

    表  11  不同脉宽突加基础冲击载荷下转子的加速度响应

    Table  11.   Acceleration response of the rotor under different pulse widths

    脉宽/ms A/g
    A1 A2 A3 A4 A5 A6
    6 3.98 0.98 4.73 1.56 5.27 1.50
    11 3.52 0.93 4.29 1.48 4.96 1.37
    降低幅度/% 11.56 5.10 9.30 5.13 5.88 8.67
    下载: 导出CSV
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  • 收稿日期:  2024-07-08
  • 网络出版日期:  2024-12-13

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