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高空舱排气环境压力系统复合模型预测控制技术

林洋豪 张百一 徐状 王信 翟超 张和洪

林洋豪, 张百一, 徐状, 等. 高空舱排气环境压力系统复合模型预测控制技术[J]. 航空动力学报, 2026, 41(X):20250564 doi: 10.13224/j.cnki.jasp.20250564
引用本文: 林洋豪, 张百一, 徐状, 等. 高空舱排气环境压力系统复合模型预测控制技术[J]. 航空动力学报, 2026, 41(X):20250564 doi: 10.13224/j.cnki.jasp.20250564
Lin Yanghao, Zhang Baiyi, Xu Zhuang, et al. Composite model predictive control technology for exhaust environment pressure in high-altitude chamber[J]. Journal of Aerospace Power, 2026, 41(X):20250564 doi: 10.13224/j.cnki.jasp.20250564
Citation: Lin Yanghao, Zhang Baiyi, Xu Zhuang, et al. Composite model predictive control technology for exhaust environment pressure in high-altitude chamber[J]. Journal of Aerospace Power, 2026, 41(X):20250564 doi: 10.13224/j.cnki.jasp.20250564

高空舱排气环境压力系统复合模型预测控制技术

doi: 10.13224/j.cnki.jasp.20250564
基金项目: 福建省自然科学基金重点项目(2021J02008); 中国航发四川燃气涡轮研究院稳定支持项目(GJCZ-0303-2024-0005); 国家自然科学基金(62003088)
详细信息
    作者简介:

    林洋豪(2001-),男,硕士生,主要研究方向为高空环境模拟技术。E-mail:13706971981@163.com

    通讯作者:

    张和洪(1990-),男,教授,博士,主要研究方向为智能信息信号处理、自抗扰控制、高空环境模拟技术。E-mail:1204713191@qq.com

  • 中图分类号: V217+.3

Composite model predictive control technology for exhaust environment pressure in high-altitude chamber

  • 摘要:

    针对高空舱飞行环境模拟试验过程中排气环境压力控制系统存在的动态优化、流量变化干扰以及安全运行约束保障问题,提出了一种结合扩张状态观测器(ESO)与控制障碍函数(CBF)约束的复合模型预测控制(MPC)策略(MPC-ESO-CBF)。分析高空舱排气环境模拟系统核心设备的综合特性与动态过程;针对排气环境压力的动态跟踪控制需求,设计MPC以实现最优控制;考虑系统中存在的未建模动态与外部扰动,构造ESO以实现实时估计与补偿。为保障系统运行的安全性,引入CBF,确保关键状态变量始终处于安全区间内。最后,依托构建的高置信度高空舱排气压力控制系统半实物数字化仿真平台,对所提出的控制策略开展了系统性验证,并与线性自抗扰控制器(LADRC)进行对照评估。验证结果显示,相较于LADRC,基于MPC-ESO-CBF的控制策略,在推力瞬变的过渡态工况下展现出更优的动态性能:排气环境压力的调节时长缩短约38.7%,瞬态峰值扰动幅度降低约33.7%,且稳态阶段的平均误差减少约49.1%。

     

  • 图 1  高空舱排气压力控制系统结构示意图

    Figure 1.  Structural schematic of the high-altitude chamber exhaust pressure control system

    图 2  高空舱排气扩压器结构示意图

    Figure 2.  Schematic diagram of the high-altitude chamber exhaust diffuser structure

    图 3  基于MPC-ESO-CBF的控制结构简图

    Figure 3.  Simplified control structure based on MPC-ESO-CBF

    图 4  典型发动机推力瞬变试验任务流程图

    Figure 4.  Typical engine thrust transient test mission profile

    图 5  排气环境压力控制效果

    Figure 5.  Exhaust environment pressure control performance

    图 6  排气环境压力控制动态误差

    Figure 6.  Dynamic error of exhaust environment pressure control

    图 7  ESO扰动估计

    Figure 7.  Disturbance estimation via ESO

    图 8  参数摄动下ESO扰动估计

    Figure 8.  Disturbance estimation via the ESO under parameter perturbations

    图 9  排气环境压力控制量

    Figure 9.  Control input of the exhaust environment pressure

    表  1  控制器参数整定

    Table  1.   Controller parameter tuning

    控制参数 数值
    $ {\omega }_{0} $ 7
    $ {N}_{{\mathrm{p}}} $ 20
    S diag(2 000,1)
    Q diag(2 000,1)
    R 10
    $ \alpha $ 0.8
    下载: 导出CSV

    表  2  仿真工况下排气环境压力控制性能

    Table  2.   Control performance of the exhaust environment pressure simulation

    控制器 阶段 环境压力
    瞬态峰值
    扰动/kPa
    环境压力
    稳态平均
    误差/kPa
    调节
    时长/s
    LADRC 子阶段1 0.0800 0.0139 62.0
    子阶段2 0.7969 0.0306 9.4
    子阶段3 1.1135 0.1330 7.5
    MPC-ESO-
    CBF
    子阶段1 0.0466 0.0034 4.1
    子阶段2 0.5274 0.0132 5.5
    子阶段3 0.7383 0.0677 4.6
    下载: 导出CSV
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  • 收稿日期:  2025-12-05
  • 网络出版日期:  2026-06-17

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