Comparative Study on Modeling Methods of Special Control Valves in Altitude Simulation Test Facility
1.School of Energy and Power Engineering,Beihang University,Beijing 100191,China;2.Collaborative Innovation Center for Advanced Aero-Engine,Beijing 100191,China;3.Science and Technology on Altitude Simulation Laboratory,AECC Sichuan Gas Turbine Establishment, Mianyang 621703,China
[1] 侯敏杰, 刘冬根. 航空发动机高空台的发展与展望[J]. 航空科学技术, 2012, (3): 1-4.
[2] 侯敏杰, 陈建民, 徐 国, 等. 先进航空动力崛起的基石——高空台[C]. 深圳: 大型飞机关键技术高层论坛暨中国航空学会2007年学术年会, 2007.
[3] Mcamis R, Miller J, Burdette R, et al. Modeling Fluid Flow Networks[C]. Florida: 32nd Joint Propulsion Conference and Exhibit, 1996.
[4] Garrard D, Vaughn D, Milhoan A, et al. Checkout Testing of the New Basic Process Control System at the Aerodynamic and Propulsion Test Unit[C]. France: International Space Planes and Hypersonic Systems and Technologies Conferences, 2012.
[5] Montgomery P A, Burdette R, Krupp B. A Real-Time Turbine Engine Facility Model and Simulation for Test Operations Modernization and Integration[R]. ASME2000-GT-0576.
[6] Schmidt K, Merten R, Menrath M, et al. Adaptation of the Stuttgart University Altitude Test Facility for BR700 Core Demonstrator Engine Tests[R]. ASME 98-GT-556.
[7] Bolk S. Multivariable Control for the Altitude Testing Facility at the University of Stuttgart[D]. Stuttgart: University of Stuttgart, 2011.
[8] K?cke S. Simulation of an Altitude Test Facility to Analyse the Compressor Surge Preventing Control[D]. Stuttgart: University of Stuttgart, 2010.
[9] 朱美印, 裴希同, 张 松, 等. 一种轮盘式特种调节阀流量特性的修正算法[J]. 燃气涡轮试验与研究, 2016, 29(5): 40-45.
[10] 朱美印, 张 松, 但志宏, 等. 一种大口径蝶阀流量特性的坐标定位回归算法[J]. 燃气涡轮试验与研究, 2017, 30(4): 39-44.
[11] 裴希同, 朱美印, 张 松, 等. 一种特种阀流量特性计算的经验公式迭代方法[J]. 燃气涡轮试验与研究, 2016, 29(5): 35-39.
[12] 缪柯强, 朱美印, 王 曦, 等. 基于神经网络和试验数据的高空台特种调节阀特性修正方法研究[C]. 绵阳:航空发动机试验与测试工程技术论坛, 2018.
[13] 裴希同. 某特种流量调节阀的流量特性及控制技术研究[D]. 北京:北京航空航天大学, 2014.
[14] 马卡洛夫. 节流装置计算[M]. 姚文华, 译. 北京:冶金工业出版社, 1957.
[15] Asgari H. Gas Turbines Modeling, Simulation, and Control Using Artifcial Neural Networks[M]. London: CRC Press, 2016.
[16] Chang F J, Chen P A, Lu Y R, et al. Real-Time Multi-Step-Ahead Water Level Forecasting by Recurrent Neural Networks for Urban Flood Control[J]. Journal of Hydrology, 2014, 517(1): 836-846.
[17] Stefánsson A, Kon?ar N, Jones A J. A Note on the Gamma Test[J]. Neural Computing & Applications, 1997, 5(3): 131-133.
[18] Evans D, Jones A J. A Proof of the Gamma Test[J]. Proceedings Mathematical Physical & Engineering Sciences, 2002, 458(2027): 2759-2799.
[19] Noori R, Karbassi A R, Sabahi M S. Evaluation of PCA and Gamma Test Techniques on ANN Operation for Weekly Solid Waste Prediction[J]. Journal of Environmental Management, 2010, 91(3): 767-771.
[20] Chang F J, Chen P A, Liu C W, et al. Regional Estimation of Groundwater Arsenic Concentrations Through Systematical Dynamic-Neural Modeling[J]. Journal of Hydrology, 2013, 499(9): 265-274.
[21] Goodfellow I, Bengio Y, Courville A. Deep Learning[M]. Massachusetts: MIT Press, 2016.