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基于试验数据的涡喷发动机起动节流反算方法

高楚铭 贾琳渊 张志舒 陈玉春

高楚铭, 贾琳渊, 张志舒, 等. 基于试验数据的涡喷发动机起动节流反算方法[J]. 航空动力学报, 2025, 40(11):20240602 doi: 10.13224/j.cnki.jasp.20240602
引用本文: 高楚铭, 贾琳渊, 张志舒, 等. 基于试验数据的涡喷发动机起动节流反算方法[J]. 航空动力学报, 2025, 40(11):20240602 doi: 10.13224/j.cnki.jasp.20240602
GAO Chuming, JIA Linyuan, ZHANG Zhishu, et al. Inverse calculation method of starting throttling for turbojet engine based on experimental data[J]. Journal of Aerospace Power, 2025, 40(11):20240602 doi: 10.13224/j.cnki.jasp.20240602
Citation: GAO Chuming, JIA Linyuan, ZHANG Zhishu, et al. Inverse calculation method of starting throttling for turbojet engine based on experimental data[J]. Journal of Aerospace Power, 2025, 40(11):20240602 doi: 10.13224/j.cnki.jasp.20240602

基于试验数据的涡喷发动机起动节流反算方法

doi: 10.13224/j.cnki.jasp.20240602
详细信息
    作者简介:

    高楚铭(1998-),女,博士生,主要从事航空发动机总体性能的研究。E-mail:gaochuming@mail.nwpu.edu.cn

    通讯作者:

    贾琳渊(1989-),男,副教授,博士,研究领域为航空发动机总体设计。E-mail:jialinyuan@nwpu.edu.cn

  • 中图分类号: V235.1

Inverse calculation method of starting throttling for turbojet engine based on experimental data

  • 摘要:

    为了提高基于部件法搭建的发动机起动过程性能计算的精度,基于功率提取法提出一种起动节流反算方法,明确起动过程的功率平衡关系,构建发动机起动共同工作方程组,从而依据起动过程供油量、转子加速率和起动机特性反向评估起动过程中的燃烧效率。基于相似原理,提出了换算扭矩缩放系数计算方法,完成了效率特性与扭矩特性的转换,并验证了该方法的有效性。进一步建立了点火前起动性能计算模型,实现了从零转速到慢车转速的起动仿真,并基于微型涡喷发动机整机试验数据对仿真模型进行验证,结果表明:起动过程中转速和p3的最大误差分别为2.81%和2.22%。该方法可以实现对起动过程的近似模拟,反算起动燃烧效率,此外还可以验证低转速区部件特性曲线的合理性,为其他类型航空发动机起动性能建模与验证提供参考。

     

  • 图 1  低转速区压气机效率变化规律

    Figure 1.  Isentropic efficient for compressor at low-speed condition

    图 2  低转速区涡轮效率变化规律

    Figure 2.  Isentropic efficient for turbine at low-speed condition

    图 3  微型涡喷发动机部件示意图

    Figure 3.  Micro turbojet engine component diagram

    图 4  起动电动机功率特性

    Figure 4.  Power characteristics of starter

    图 5  起动试验过程转速变化

    Figure 5.  Speed change of starting test

    图 6  起动过程转子加速率特性

    Figure 6.  Starting process rotor acceleration rate characteristics

    图 7  起动试验过程燃油流量变化

    Figure 7.  Fuel flow change of starting test

    图 8  点火前过程计算模型

    Figure 8.  Pre-ignition process calculation model

    图 9  发动机起动计算流程

    Figure 9.  Engine starting calculation process

    图 10  压气机共同工作线

    Figure 10.  Compressor matching line

    图 11  涡轮共同工作线

    Figure 11.  Turbine matching line

    图 12  扭矩特性和效率特性的计算结果对比

    Figure 12.  Comparison of calculation results of torque characteristics and efficiency characteristics

    图 13  起动过程燃烧效率

    Figure 13.  Combustion efficiency in starting process

    图 14  起动过程转速对比结果

    Figure 14.  Comparison results of speed in the starting process

    图 15  起动过程p3对比结果

    Figure 15.  Comparison results of p3 in the starting process

    图 16  各工作参数相对误差对比

    Figure 16.  Comparison of error of each working parameter

    表  1  压气机不同工作状态下部件特性范围

    Table  1.   Characteristics of compressors under different working conditions

    状态 压比 效率
    压气机态 π > 1 η$\in $(0,1)
    搅拌器态 π < 1 η$\in $(−∞,0)
    涡轮态 π < 1 η$\in $(1,+∞)
    下载: 导出CSV

    表  2  涡轮不同工作状态下部件特性范围

    Table  2.   Characteristics of turbine under different working conditions

    状态 压比 效率
    涡轮态 π > 1 η$\in $(0,1)
    搅拌器态 π > 1 η$\in $(−∞,0)
    压气机态 π < 1 η$\in $(1,+∞)
    下载: 导出CSV

    表  3  微型涡喷发动机各截面符号定义

    Table  3.   Micro turbojet engine section symbol definition

    截面定义
    0流量管测量截面
    1进气道进口
    2进气道出口/离心压气机进口
    3离心压气机扩压器出口/燃烧室进口
    4燃烧室出口/涡轮进口
    5涡轮出口
    9尾喷管出口
    下载: 导出CSV

    表  4  发动机非线性方程组求解方式

    Table  4.   Engine nonlinear equations solution

    模式 被控参数 自变量 平衡方程数
    稳态 nob ZcT4πtn 4
    起动节流反算 nob ZcT4πtnηb 5
    Wfb_ob
    下载: 导出CSV

    表  5  发动机非线性方程组求解方式

    Table  5.   Engine nonlinear equations solution

    模式 被控参数 自变量 平衡方程数
    起动节流反算 nob ZcT4πtnηb 5
    Wfb_ob
    起动性能计算 Wfb_ob ZcT4πtn 4
    下载: 导出CSV
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  • 收稿日期:  2024-08-31
  • 网络出版日期:  2024-12-05

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