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Energy control of distributed parameter systems via speed-gradient method : case study of string and sine-Gordon benchmark models. / Orlov, Y. V.; Fradkov, A. L.; Andrievsky, B.

In: International Journal of Control, Vol. 90, No. 11, 02.11.2017, p. 2554-2566.

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Orlov, Y. V. ; Fradkov, A. L. ; Andrievsky, B. / Energy control of distributed parameter systems via speed-gradient method : case study of string and sine-Gordon benchmark models. In: International Journal of Control. 2017 ; Vol. 90, No. 11. pp. 2554-2566.

BibTeX

@article{70f38042ac7e4490b90ae44195ff5b29,
title = "Energy control of distributed parameter systems via speed-gradient method: case study of string and sine-Gordon benchmark models",
abstract = "Energy control problems are analysed for infinite dimensional systems. Benchmark linear wave equation and nonlinear sine-Gordon equation are chosen for exposition. The relatively simple case of distributed yet uniform over the space control is considered. The speed-gradient method for energy control of Hamiltonian systems proposed by A. Fradkov in 1996, has already successfully been applied to numerous nonlinear and adaptive control problems is presently developed and justified for the above partial differential equations (PDEs). An infinite dimensional version of the Krasovskii–LaSalle principle is validated for the resulting closed-loop systems. By applying this principle, the closed-loop trajectories are shown to either approach the desired energy level set or converge to a system equilibrium. The numerical study of the underlying closed-loop systems reveals reasonably fast transient processes and the feasibility of a desired energy level if initialised with a lower energy level.",
keywords = "energy control, Sine-Gordon equation, speed-gradient",
author = "Orlov, {Y. V.} and Fradkov, {A. L.} and B. Andrievsky",
year = "2017",
month = nov,
day = "2",
doi = "10.1080/00207179.2016.1260160",
language = "English",
volume = "90",
pages = "2554--2566",
journal = "International Journal of Control",
issn = "0020-7179",
publisher = "Taylor & Francis",
number = "11",

}

RIS

TY - JOUR

T1 - Energy control of distributed parameter systems via speed-gradient method

T2 - case study of string and sine-Gordon benchmark models

AU - Orlov, Y. V.

AU - Fradkov, A. L.

AU - Andrievsky, B.

PY - 2017/11/2

Y1 - 2017/11/2

N2 - Energy control problems are analysed for infinite dimensional systems. Benchmark linear wave equation and nonlinear sine-Gordon equation are chosen for exposition. The relatively simple case of distributed yet uniform over the space control is considered. The speed-gradient method for energy control of Hamiltonian systems proposed by A. Fradkov in 1996, has already successfully been applied to numerous nonlinear and adaptive control problems is presently developed and justified for the above partial differential equations (PDEs). An infinite dimensional version of the Krasovskii–LaSalle principle is validated for the resulting closed-loop systems. By applying this principle, the closed-loop trajectories are shown to either approach the desired energy level set or converge to a system equilibrium. The numerical study of the underlying closed-loop systems reveals reasonably fast transient processes and the feasibility of a desired energy level if initialised with a lower energy level.

AB - Energy control problems are analysed for infinite dimensional systems. Benchmark linear wave equation and nonlinear sine-Gordon equation are chosen for exposition. The relatively simple case of distributed yet uniform over the space control is considered. The speed-gradient method for energy control of Hamiltonian systems proposed by A. Fradkov in 1996, has already successfully been applied to numerous nonlinear and adaptive control problems is presently developed and justified for the above partial differential equations (PDEs). An infinite dimensional version of the Krasovskii–LaSalle principle is validated for the resulting closed-loop systems. By applying this principle, the closed-loop trajectories are shown to either approach the desired energy level set or converge to a system equilibrium. The numerical study of the underlying closed-loop systems reveals reasonably fast transient processes and the feasibility of a desired energy level if initialised with a lower energy level.

KW - energy control

KW - Sine-Gordon equation

KW - speed-gradient

UR - http://www.scopus.com/inward/record.url?scp=85000950786&partnerID=8YFLogxK

U2 - 10.1080/00207179.2016.1260160

DO - 10.1080/00207179.2016.1260160

M3 - Article

AN - SCOPUS:85000950786

VL - 90

SP - 2554

EP - 2566

JO - International Journal of Control

JF - International Journal of Control

SN - 0020-7179

IS - 11

ER -

ID: 13387639