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2023 | OriginalPaper | Buchkapitel

Serial Nonlinear Correction Method in the Flight Vehicle Systems

verfasst von : Iuliia S. Zaitceva, Nikolay V. Kuznetsov, Boris R. Andrievsky

Erschienen in: Cyber-Physical Systems and Control II

Verlag: Springer International Publishing

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Abstract

The nonlinear correction method is widely used in automatic control systems to increase stability margins and quality rating. This method has also found application in piloted aircraft control tasks, where the loss of stability and the occurrence of oscillations are unacceptable. This paper discusses new nonlinear correcting devices. Their structure is based on separate channels of the desired control signal amplitude and phase formation. Their application is demonstrated by the example of a piloted aircraft, the control systems of which have actuator rate limits. The illustrations of frequency characteristics, spectrograms of nonlinear correcting devices, time processes of the input, and actual signals of corrected and nonlinear uncorrected systems, from which the efficiency of the serial correcting devices are observable, are presented.

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Literatur
1.
Zurück zum Zitat Filatov, I., Sharov, S.: Investigation of parametric sensitivity of non-linear dynamic correcting devices. Eng. Cybern. 15(2), 166–169 (1977) Filatov, I., Sharov, S.: Investigation of parametric sensitivity of non-linear dynamic correcting devices. Eng. Cybern. 15(2), 166–169 (1977)
2.
Zurück zum Zitat Sharov, A., Sharov, S.: Investigation of parameters and frequency properties of certain nonlinear dynamic correcting devices. Autom. Remote. Control. 35(8), 1219–1225 (1974) Sharov, A., Sharov, S.: Investigation of parameters and frequency properties of certain nonlinear dynamic correcting devices. Autom. Remote. Control. 35(8), 1219–1225 (1974)
3.
Zurück zum Zitat Skorospeshkin, M.V., Sukhodoev, M.S., Timoshenko, E.A., Lenskiy, F.V.: Adaptive pseudolinear compensators of dynamic characteristics of automatic control systems. In: IOP Conference Series: Material Science and Engineering, vol. 124, no. 012028 (2016) Skorospeshkin, M.V., Sukhodoev, M.S., Timoshenko, E.A., Lenskiy, F.V.: Adaptive pseudolinear compensators of dynamic characteristics of automatic control systems. In: IOP Conference Series: Material Science and Engineering, vol. 124, no. 012028 (2016)
4.
Zurück zum Zitat Alcala, I., Gordillo, F., Aracil, J.: Phase compensation design for prevention of PIO due to actuator rate saturation. In: Proc. of the 2004 American Control Conference, vol. 5, pp. 4687–4691. IEEE, Boston, MA (2004) Alcala, I., Gordillo, F., Aracil, J.: Phase compensation design for prevention of PIO due to actuator rate saturation. In: Proc. of the 2004 American Control Conference, vol. 5, pp. 4687–4691. IEEE, Boston, MA (2004)
5.
Zurück zum Zitat Gatley, S., Postlethwaite, I., Turner, M., Kumar, A.: A comparison of rate-limit compensation schemes for PIO avoidance. Aerosp. Sci. Technol. 10(1), 37–47 (2006)CrossRefMATH Gatley, S., Postlethwaite, I., Turner, M., Kumar, A.: A comparison of rate-limit compensation schemes for PIO avoidance. Aerosp. Sci. Technol. 10(1), 37–47 (2006)CrossRefMATH
6.
Zurück zum Zitat Andrievsky, B., Arseniev, D., Kuznetsov, N., Zaitceva, I.: Pilot-induced oscillations and their prevention. In: Arseniev, D., Overmeyer, L., Kalviainen, H., Katalinic, B. (eds.) Cyber-Physical Systems and Control 2019. Lecture Notes in Networks and Systems, vol. 95. Springer, Cham (2020) Andrievsky, B., Arseniev, D., Kuznetsov, N., Zaitceva, I.: Pilot-induced oscillations and their prevention. In: Arseniev, D., Overmeyer, L., Kalviainen, H., Katalinic, B. (eds.) Cyber-Physical Systems and Control 2019. Lecture Notes in Networks and Systems, vol. 95. Springer, Cham (2020)
7.
Zurück zum Zitat Zaitceva, I., Andrievsky, B.: Optimization of the manned aircraft pitch angle control loop with actuator rate limitation and nonlinear correction. In: IOP Conference Series: Journal of Physics, vol. 1864, no. 012055 (2021) Zaitceva, I., Andrievsky, B.: Optimization of the manned aircraft pitch angle control loop with actuator rate limitation and nonlinear correction. In: IOP Conference Series: Journal of Physics, vol. 1864, no. 012055 (2021)
8.
Zurück zum Zitat Chechurin, L., Chechurin, S.: Physical fundamentals of oscillations. Frequency Analysis Of Periodic Motion Stability. Springer Int. Publ. (2017) Chechurin, L., Chechurin, S.: Physical fundamentals of oscillations. Frequency Analysis Of Periodic Motion Stability. Springer Int. Publ. (2017)
9.
Zurück zum Zitat Serov, V.: Fourier Series, Fourier Transform and their Applications to Mathematical Physics. Springer Int. Publ. (2017) Serov, V.: Fourier Series, Fourier Transform and their Applications to Mathematical Physics. Springer Int. Publ. (2017)
10.
Zurück zum Zitat Zaitceva, I.S., Andrievsky, B.R., Kuznetsov, N.V.: Device for nonlinear correction in electromechanical systems. Utility Model Patent No. 202917 date 15.03.2021, Appl. no. 2020137728 date 16.11.2020 Zaitceva, I.S., Andrievsky, B.R., Kuznetsov, N.V.: Device for nonlinear correction in electromechanical systems. Utility Model Patent No. 202917 date 15.03.2021, Appl. no. 2020137728 date 16.11.2020
11.
Zurück zum Zitat Navon, E., Bobrovsky, B.Z.: An efficient outlier rejection technique for Kalman filters. Signal Process. 188(108164), 1–12 (2021) Navon, E., Bobrovsky, B.Z.: An efficient outlier rejection technique for Kalman filters. Signal Process. 188(108164), 1–12 (2021)
12.
Zurück zum Zitat Kang, C.l., Kim, C.H.: An adaptive notch filter for suppressing mechanical resonance in high track density disk drives. Microsyst. Technol. 11(1), 638–652 (2005) Kang, C.l., Kim, C.H.: An adaptive notch filter for suppressing mechanical resonance in high track density disk drives. Microsyst. Technol. 11(1), 638–652 (2005)
13.
Zurück zum Zitat Nelson, R.C.: Flight Stability and Automatic Control, 2nd edn. WCB/McGraw-Hill (1998) Nelson, R.C.: Flight Stability and Automatic Control, 2nd edn. WCB/McGraw-Hill (1998)
14.
Zurück zum Zitat McRuer, D.T., Ashkenas, I., Graham, D.: Aircraft Dynamics and Automatic Control. Princeton, New Jersey, NJ (1973) McRuer, D.T., Ashkenas, I., Graham, D.: Aircraft Dynamics and Automatic Control. Princeton, New Jersey, NJ (1973)
15.
Zurück zum Zitat McRuer, D., Krendel, E.: Mathematical Models of Human Pilot Behavior. Tech. Report no. AGARD AG-188 (1974) McRuer, D., Krendel, E.: Mathematical Models of Human Pilot Behavior. Tech. Report no. AGARD AG-188 (1974)
16.
Zurück zum Zitat McRuer, D., Graham, D., Krendel, E., Reisener, W.: Human pilot dynamics in compensatory systems: theory, models, and experiments with controlled element and forcing function variations. Tech. rep. no. AFFDL-TR-65–15, Systems Technology Inc., The Franklin Institute (1965) McRuer, D., Graham, D., Krendel, E., Reisener, W.: Human pilot dynamics in compensatory systems: theory, models, and experiments with controlled element and forcing function variations. Tech. rep. no. AFFDL-TR-65–15, Systems Technology Inc., The Franklin Institute (1965)
17.
Zurück zum Zitat Mandal, T., Gu, Y.: Analysis of pilot-induced-oscillation and pilot vehicle system stability using UAS flight experiments. Aerospace 3(42), 1–23 (2016) Mandal, T., Gu, Y.: Analysis of pilot-induced-oscillation and pilot vehicle system stability using UAS flight experiments. Aerospace 3(42), 1–23 (2016)
18.
Zurück zum Zitat Peaucelle, D., Bortott, A., Gouaisbaut, F., Arzelier, D., Pittet, C.: Robust analysis of DEMETER benchmark via quadratic separation. IFAC-PapersOnLine 43(15), 530–535 (2010) Peaucelle, D., Bortott, A., Gouaisbaut, F., Arzelier, D., Pittet, C.: Robust analysis of DEMETER benchmark via quadratic separation. IFAC-PapersOnLine 43(15), 530–535 (2010)
19.
Zurück zum Zitat Luzi, A.-R., Peaucelle, D., Biannic, J.-M., Pittet, C., Mignot, J.: Structered adaptive attitude control of a satellite. Int. J. Adapt. Control. Signal Process. 28(1), 7–8 (2014) Luzi, A.-R., Peaucelle, D., Biannic, J.-M., Pittet, C., Mignot, J.: Structered adaptive attitude control of a satellite. Int. J. Adapt. Control. Signal Process. 28(1), 7–8 (2014)
Metadaten
Titel
Serial Nonlinear Correction Method in the Flight Vehicle Systems
verfasst von
Iuliia S. Zaitceva
Nikolay V. Kuznetsov
Boris R. Andrievsky
Copyright-Jahr
2023
DOI
https://doi.org/10.1007/978-3-031-20875-1_29