Intellectual stock regulator of gas-dynamic stability of the aviation GTE compressor

Сергій Васильович Єнчев, Сергій Олегович Таку

Abstract


The gas-dynamic stability of compressors of aircraft gas turbine engines is one of the most important conditions that determine their reliability and level of flight safety. Unstable operation of the compressor in the engine system (surge) leads to loss of thrust accompanied by an increase in gas temperature in front of the turbine and increased vibration because of large amplitudes of pressure pulsations and mass flow through the engine path. To improve the parameters of ACS aviation gas turbine engines are increasingly using regulators built using fuzzy logic algorithms. The implementation of fuzzy control algorithms differs from classical algorithms, which are based on the concept of feedback and reproduce a given functional dependence or differential equation. These functions are related to the qualitative assessment of system behavior, analysis of the current changing situation, and the selection of the most appropriate for the situation supervision of the gas turbine engine. This concept is called advanced management. ACS gas turbine engines with fuzzy regulators are nonlinear systems in which stable self-oscillations are possible. Approximate methods are used to solve the problems of analysis of periodic oscillations in nonlinear systems. Among them, the most developed in theoretical and methodological aspects is the method of harmonic linearization. The scientific problem is solved in the work – methods of synthesis of intelligent control system with the fuzzy regulator as a separate subsystem based on the method of harmonic linearization and design on its basis of fuzzy ACS reserve of gas-dynamic stability of aviation gas turbine engine. Based on the analysis of the principles of construction of fuzzy control systems, it is shown that the use of fuzzy logic provides a new approach to the design of control systems for aviation gas turbine engines in contrast to traditional control methods. It is shown that the fuzzy controller, as the only essentially nonlinear element when using numerical integration methods, can be harmonically linearized. Harmonic linearization allows using the oscillation index to assess the quality in the separate channels of fuzzy ACS aviation gas turbine engines. A fuzzy expert system has been developed for optimal adjustment of the functions of belonging of typical fuzzy regulators according to quality criteria to transients.

Keywords


aircraft gas turbine engine; gas-dynamic stability; control system; intelligent fuzzy regulator; harmonic linearization

References


Volyansʹka, L. H., Panin, V. V., Haoyun, S. Metody i zasoby pidvyshchennya hazodynamichnoyi stiykosti kompresoriv hazoturbinnykh dvyhuniv [Methods and means of increasing the gas-dynamic stability of gas turbine engine compressors]. Kyyiv, 2005. 200 р.

Panin, V. V. Gazodinamicheskaja ustojchivost' kompressorov aviacionnyh GTD [Analysis Gas-dynamic stability of aviation gas turbine compressors]. Kyyiv, 1998. 192 р.

Kulyk, M. S., Panin, V. V., Kinashchuk, I. F. Metod vyznachennia zapasiv stiikosti kaskadiv kompresora dvyhuna D-18T na perekhidnykh rezhymakh [Method for determining the margins of stability of the compressor stages of the D-18T engine in transient modes]. Bulletin of the National Aviation University, 2002, no. 3 (14), pp. 14–18.

Panin, V. V., Yenchev, S. V., Popov, A. V., Sidorenko, A. Ju. Identifikacija pompazha v kompressorah aviacionnyh gazoturbinnyh dvigatelej s pomoshh'ju vejvlet-analiza [Identifying Surge in Aircraft Gas Turbine Compressors Using Wavelet Analysis]. Aviacijno-kosmicna tehnika i tehnologia – Aerospace technic and technology, 2011, no. 9(86), pp. 134-138.

Vasil'ev, V. I., Il'jasov, B. G. Intellektual'nye sistemy upravlenija : teorija i praktika [Intelligent control systems: theory and practice]. Moscow, 2009. 392 p.

Yenchev, S. V., Mazur, T. A., Tovkach, S. S. Fuzzy Automatic Control System Synthesis of the Propeller Fan the Aviation Gas Turbine Engine. Electronics and Control Systems, 2018, no. 58, vol. 4, pp. 56-63. DOI: 10.18372/1990-5548.58.13510.

Gostev, V. I. Nechetkie reguljatory v sistemah avtomaticheskogo upravlenija [Fuzzy controllers in automatic control systems]. Kyyiv, 2008. 972 р.

Besekerskiy, V. A., Popov, Ye. P. Teoriya sistem avtomaticheskogo regulirovaniya [Theory of automatic control systems]. St. Petersburg, 2007. 751 p.




DOI: https://doi.org/10.32620/aktt.2021.4.07