| [1] |
孙志岩. 航空发动机控制系统发展概述[J]. 测控技术, 2019, 38(6): 1-4.
|
|
SUN Z Y. Overview of the development of aero-engine control systems [J]. Measurement & Control Technology, 2019, 38(6): 1-4 (in Chinese).
|
| [2] |
GARG S. Aircraft turbine engine control research at NASA Glenn research center[J]. Journal of Aerospace Engineering, 2013, 26(2): 422-438.
|
| [3] |
GARG S, SIMON D L. Challenges in aircraft engine control and gas path health management: E-664065 [R]. Washington, D.C.: NASA, 2012.
|
| [4] |
CONNOLLY J W, CSANK J, CHICATELLI A, et al. Model-based control of a nonlinear aircraft engine simulation using an optimal tuner Kalman filter approach[C]∥49th AIAA/ASME/SAE/ASEE Joint Propulsion Conference. Reston: AIAA, 2013.
|
| [5] |
尹炳雄, 谷多多, 蔡文哲, 等. 基于多模型切换预测控制的新型矢量发动机模态切换控制方法[J]. 航空动力学报, 2026, 41(4): 20240821.
|
|
YIN B X, GU D D, CAI W Z, et al. Mode switching control method based on multi-model switching predictive control for a novel thrust vector control engine[J]. Journal of Aerospace Power, 2026, 41(4): 20240821 (in Chinese).
|
| [6] |
MCKINNEY J S. Simulation of turbofan engine, Part Ⅰ. Description of method and balancing technique: AFAPC-TR-67-125[R]. Ohio: Air Force Aero-Propulsion Laboratory, 1967.
|
| [7] |
KOENIG R W, FISHBACH L H. GENENG: A program for calculating design and off-design performance for turbojet and turbofan engines: NASA-TN-D-6552 [R]. Washington, D.C.: NASA, 1972.
|
| [8] |
FISHBACH L H, KOENIG R W. GENENG II: A program for calculating design and off-design performance of two-and three-spool turbofans with as many as three nozzles[M]. Washington, D.C.: NASA, 2018.
|
| [9] |
JIANG Y F, GONG X Y, LIU D, et al. EnlightenGAN: Deep light enhancement without paired supervision[J]. IEEE Transactions on Image Processing, 2021, 30: 2340-2349.
|
| [10] |
LYTLE J, FOLLEN G, NAIMAN C, et al. Numerical propulsion system simulation (NPSS) 1999 industry review: NASA/TM-2000-209795[R]. Washington, D.C.: NASA, 2000.
|
| [11] |
周文祥, 黄金泉, 窦建平, 等. 面向对象的涡扇发动机及控制系统仿真平台[J]. 航空动力学报, 2007, 22(1): 119-125.
|
|
ZHOU W X, HUANG J Q, DOU J P, et al. Object-oriented simulation platform for turbofan engine and its control system[J]. Journal of Aerospace Power, 2007, 22(1): 119-125 (in Chinese).
|
| [12] |
夏飞, 黄金泉, 周文祥. 基于MATLAB/SIMULINK的航空发动机建模与仿真研究[J]. 航空动力学报, 2007, 22(12): 2134-2138.
|
|
XIA F, HUANG J Q, ZHOU W X. Modeling of and simulation research on turbofan engine based on MATLAB/SIMULINK[J]. Journal of Aerospace Power, 2007, 22(12): 2134-2138 (in Chinese).
|
| [13] |
张曙光, 魏志远, 夏双枝. 面向适航的航空发动机非线性气动热力建模方法综述[J]. 航空动力学报, 2018, 33(12): 2885-2899.
|
|
ZHANG S G, WEI Z Y, XIA S Z. Review on methods of aircraft engine nonlinear aerothermal-dynamic modeling for airworthiness requirement[J]. Journal of Aerospace Power, 2018, 33(12): 2885-2899 (in Chinese).
|
| [14] |
卓刚, 孙健国, 杨刚. 基于小波神经网络的航空发动机建模研究[J]. 南京航空航天大学学报, 2004, 36(6): 728-731.
|
|
ZHUO G, SUN J G, YANG G. Aeroengine modeling based on wavelet neural network[J]. Journal of Nanjing University of Aeronautics & Astronautics, 2004, 36(6): 728-731 (in Chinese).
|
| [15] |
杨坤, 宗国仁, 王伟. 基于Hammerstein系统的航空发动机部件级辨识建模方法[J]. 海军航空大学学报, 2025, 40(1): 133-141.
|
|
YANG K, ZONG G R, WANG W. Modeling and identification method for aerospace engine components based on Hammerstein systems[J]. Journal of Naval Aviation University, 2025, 40(1): 133-141 (in Chinese).
|
| [16] |
叶一帆, 王占学, 张晓博. 基于多代理模型的航空发动机建模及优化方法[J]. 推进技术, 2021, 42(12): 2684-2693.
|
|
YE Y F, WANG Z X, ZHANG X B. Multi-surrogates based modelling and optimization algorithm suitable for aero-engine[J]. Journal of Propulsion Technology, 2021, 42(12): 2684-2693 (in Chinese).
|
| [17] |
LUPPOLD R, ROMAN J, GALLOPS G, et al. Estimating in-flight engine performance variations using Kalman filter concepts[C]∥25th Joint Propulsion Conference. Reston: AIAA, 1989.
|
| [18] |
KERR L J, NEMEC T S, GALLOPS G W. Real-time estimation of gas turbine engine damage using a control based Kalman filter algorithm[C]∥ASME 1991 International Gas Turbine and Aeroengine Congress and Exposition. New York: ASME, 2015.
|
| [19] |
VOLPONI A J, SIMON D L. Enhanced self tuning on-board real-time model (eSTORM) for aircraft engine performance health tracking: NASA/CR-2008-215272 [R]. Washington, D.C.: NASA, 2008.
|
| [20] |
LU F, ZHENG W H, HUANG J Q, et al. Life cycle performance estimation and in-flight health monitoring for gas turbine engine[J]. Journal of Dynamic Systems, Measurement, and Control, 2016, 138(9): 091009.
|
| [21] |
CHEN Q, SHENG H L, ZHANG T H. An improved nonlinear onboard adaptive model for aero-engine performance control[J]. Chinese Journal of Aeronautics, 2023, 36(10): 317-334.
|
| [22] |
陆军, 郭迎清, 张书刚. 航空发动机非线性模型实时计算的迭代方法研究[J]. 航空动力学报, 2010, 25(3): 681-686.
|
|
LU J, GUO Y Q, ZHANG S G. Research on the iteration methods in aero-engine non-linear model real-time computation[J]. Journal of Aerospace Power, 2010, 25(3): 681-686 (in Chinese).
|
| [23] |
陆军, 郭迎清, 张书刚. 基于改进混合卡尔曼滤波器的航空发动机机载自适应模型[J]. 航空动力学报, 2011, 26(11): 2593-2600.
|
|
LU J, GUO Y Q, ZHANG S G. Aeroengine on-board adaptive model based on improved hybrid Kalman filter[J]. Journal of Aerospace Power, 2011, 26(11): 2593-2600 (in Chinese).
|
| [24] |
XU M J, WANG K, LI M, et al. An adaptive on-board real-time model with residual online learning for gas turbine engines using adaptive memory online sequential extreme learning machine[J]. Aerospace Science and Technology, 2023, 141: 108513.
|
| [25] |
代安宁. 航空发动机机载自适应模型及优化控制研究[D]. 大连: 大连理工大学, 2020.
|
|
DAI A N. Research on the on-board adaptive model and optimization control of aero-engine[D]. Dalian: Dalian University of Technology, 2020 (in Chinese).
|
| [26] |
WEI Z Y, ZHANG S G, JAFARI S, et al. Gas turbine aero-engines real time on-board modelling: A review, research challenges, and exploring the future[J]. Progress in Aerospace Sciences, 2020, 121: 100693.
|
| [27] |
LU F, GAO T, HUANG J Q, et al. Nonlinear Kalman filters for aircraft engine gas path health estimation with measurement uncertainty[J]. Aerospace Science and Technology, 2018, 76: 126-140.
|
| [28] |
陈芊. 高稳定高安全性航空发动机模型基智能控制方法研究[D]. 南京: 南京航空航天大学, 2023.
|
|
CHEN Q. Model-based intelligent control method with high stability and high safety for aircraft engine[D]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2023 (in Chinese).
|
| [29] |
LU F, LI Z H, HUANG J Q, et al. Hybrid state estimation for aircraft engine anomaly detection and fault accommodation[J]. AIAA Journal, 2020, 58(4): 1748-1762.
|
| [30] |
LU F, GAO T, HUANG J Q, et al. A novel distributed extended Kalman filter for aircraft engine gas-path health estimation with sensor fusion uncertainty[J]. Aerospace Science and Technology, 2019, 84: 90-106.
|
| [31] |
杨曦中, 艾剑良. 基于改进强跟踪滤波器的发动机自适应模型[J]. 系统仿真学报, 2018, 30(8): 2918-2927.
|
|
YANG X Z, AI J L. Design of aircraft engine adaptive model based on improved strong tracking filter[J]. Journal of System Simulation, 2018, 30(8): 2918-2927 (in Chinese).
|
| [32] |
ZHOU X, LU F, HUANG J Q. Fault diagnosis based on measurement reconstruction of HPT exit pressure for turbofan engine[J]. Chinese Journal of Aeronautics, 2019, 32(5): 1156-1170.
|
| [33] |
ZHANG Y, WEN S X, LIU K Z, et al. Health parameters estimation of turbofan engine based on improved UKF method[C]∥2022 41st Chinese Control Conference (CCC). Piscataway: IEEE Press, 2022: 4008-4015.
|
| [34] |
LU F, HUANG J Q, LV Y Q. Gas path health monitoring for a turbofan engine based on a nonlinear filtering approach[J]. Energies, 2013, 6(1): 492-513.
|
| [35] |
YANG B, SENGUPTA P, MENON P K. Turbine engine performance estimation using particle filters[C]∥ 53rd AIAA Aerospace Sciences Meeting. Reston: AIAA, 2015.
|
| [36] |
WANG Q H, HUANG J Q, LU F. An improved particle filtering algorithm for aircraft engine gas-path fault diagnosis[J]. Advances in Mechanical Engineering, 2016, 8(7): 1687814016659602.
|
| [37] |
YU J B. Aircraft engine health prognostics based on logistic regression with penalization regularization and state-space-based degradation framework[J]. Aerospace Science and Technology, 2017, 68: 345-361.
|
| [38] |
ZHU J T, HU Y, LI Y, et al. Application of adaptive square root cubature Kalman filter in turbofan engine gas path performance monitoring[J]. IOP Conference Series: Earth and Environmental Science, 2019, 267(4): 042073.
|