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界面内载荷及转子结构状态品质控制方法研究

琚奕鹏 吴法勇 陈雪骑 黄耀宇 任志远

琚奕鹏, 吴法勇, 陈雪骑, 等. 界面内载荷及转子结构状态品质控制方法研究[J]. 航空动力学报, 2025, 40(8):20240537 doi: 10.13224/j.cnki.jasp.20240537
引用本文: 琚奕鹏, 吴法勇, 陈雪骑, 等. 界面内载荷及转子结构状态品质控制方法研究[J]. 航空动力学报, 2025, 40(8):20240537 doi: 10.13224/j.cnki.jasp.20240537
JU Yipeng, WU Fayong, CHEN Xueqi, et al. Research on internal load of the interface and quality control methods for rotor configuration state[J]. Journal of Aerospace Power, 2025, 40(8):20240537 doi: 10.13224/j.cnki.jasp.20240537
Citation: JU Yipeng, WU Fayong, CHEN Xueqi, et al. Research on internal load of the interface and quality control methods for rotor configuration state[J]. Journal of Aerospace Power, 2025, 40(8):20240537 doi: 10.13224/j.cnki.jasp.20240537

界面内载荷及转子结构状态品质控制方法研究

doi: 10.13224/j.cnki.jasp.20240537
详细信息
    作者简介:

    琚奕鹏(1991-),男,工程师,主要从事航空发动机总体结构设计。E-mail:juyipeng1991@163.com

  • 中图分类号: V231.9

Research on internal load of the interface and quality control methods for rotor configuration state

  • 摘要:

    界面连接转子系统结构状态参数之间的耦合关系对整机振动有重要影响,综合考虑了构件质心偏移和惯性主轴偏斜沿轴向的分布,提出了转子结构状态品质控制的本质是优化和控制“三轴”的一致性,减小连接界面旋转惯性内载荷。建立了基于转子构件可测几何参数和力学参数的虚拟装配预测模型,实现了转子同轴度、不平衡量及界面内载荷的协同优化。形成了涵盖制造-装配-分解全流程的闭环控制方案,工程应用表明:发动机试车一次合格率提升15%以上,大部分关键参数波动幅度降低30%以上。

     

  • 图 1  螺栓附近结构单元受力分析

    Figure 1.  Force analysis of structural units near bolts

    图 2  转子系统“三轴”关系

    Figure 2.  “Three axis” relationship of rotor system

    图 3  装配、制造过程对转子品质的影响

    Figure 3.  Impact of assembly and manufacturing processes on rotor quality

    图 4  形心轴偏斜引起转子附加旋转惯性载荷

    Figure 4.  Additional rotational inertia load on the rotor caused by the skewness of the centroid axis

    图 5  刚体件堆叠优化模型

    Figure 5.  Optimization model for stacking rigid components

    图 6  构件“三轴”空间分布示意图

    Figure 6.  Spatial distribution of components along the “three axes”

    图 7  转子任一连接界面旋转惯性内载荷分析

    Figure 7.  Analysis of rotational inertia internal load on any connection interface of the rotor

    图 8  高品质核心机控制技术路线

    Figure 8.  High-quality core control technology roadmap

    图 9  转子品质控制原则

    Figure 9.  Principle of rotor quality control

    图 10  旋转惯性内载荷优化步骤

    Figure 10.  Optimization steps for rotational inertia internal load

    图 11  转子同轴度实测值与计算值矢量偏差分布情况

    Figure 11.  Distribution of vector deviation between measured and calculated rotor coaxiality values

    图 12  转子同轴度、垂直度预测结果

    Figure 12.  Prediction results of rotor coaxiality and perpendicularity

    图 13  转子初始不平衡量分布

    Figure 13.  Distribution of initial rotor unbalance

    图 14  转子初始不平衡量优化效果对比

    Figure 14.  Comparison of optimization effects for initial unbalance of rotors

    图 15  不同结构特征的构件及其同轴度控制

    Figure 15.  Components with different structural features and their coaxiality control

    图 16  涡轮前封严盘初始与最终不平衡量对比

    Figure 16.  Comparison of initial and final unbalance of turbine front sealing disc

    图 17  压气机转子质心偏心分布

    Figure 17.  Distribution of eccentricity of compressor rotor center of mass

    图 18  核心机转子关键装配相位参数

    Figure 18.  Key assembly phase parameters of core rotors

    图 19  转子关键结构状态控制参数

    Figure 19.  Control parameters for key structural states of rotors

    图 20  发动机分解流程及检查项目

    Figure 20.  Engine decomposition process and inspection items

    图 21  转子结构变形分析

    Figure 21.  Deformation analysis of rotor structure

    图 22  转子不平衡量变化分析

    Figure 22.  Analysis of changes in rotor unbalance

    图 23  转子各连接界面螺母松脱力矩分布

    Figure 23.  Distribution of loosening torque of nuts at each connection interface of the rotor

    图 24  部分关键参数过程能力对比

    Figure 24.  Comparison of key parameter process capabilities

    图 25  试车合格率对比

    Figure 25.  Comparison of test pass rates

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  • 收稿日期:  2024-08-01
  • 网络出版日期:  2025-04-10

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