LQR control for a system describing the interaction between a floating solid and the surrounding fluid

Fuente: arXiv
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Autori principali: Tucsnak, Marius, Xu, Zhuo
Natura: Preprint
Pubblicazione: 2024
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author Tucsnak, Marius
Xu, Zhuo
author_facet Tucsnak, Marius
Xu, Zhuo
contents This paper studies an infinite time horizon LQR optimal control problem for a system describing, within a linear approximation, the vertical oscillations of a floating solid, coupled to the motion of the free boundary fluid on which it floats. The fluid flow is described by a viscous version of the linearized Saint-Venant equations (shallow water regime). The major difficulty we are facing is that the domain occupied by the fluid is unbounded so that the system is not exponentially stable. This fact firstly raises challenges in proving the wellposedness, requiring the combined use of analytic semigroup theory and of an interpolation technique. The main contribution of the paper is that we show that, in spite of the lack of exponential stabilizability, we can define a wellposed LQR problem for which a Riccati based approach to design feedback controls can be implemented.
format Preprint
id arxiv_https___arxiv_org_abs_2406_08072
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle LQR control for a system describing the interaction between a floating solid and the surrounding fluid
Tucsnak, Marius
Xu, Zhuo
Optimization and Control
93C20, 93B52, 35Q35, 49J21
This paper studies an infinite time horizon LQR optimal control problem for a system describing, within a linear approximation, the vertical oscillations of a floating solid, coupled to the motion of the free boundary fluid on which it floats. The fluid flow is described by a viscous version of the linearized Saint-Venant equations (shallow water regime). The major difficulty we are facing is that the domain occupied by the fluid is unbounded so that the system is not exponentially stable. This fact firstly raises challenges in proving the wellposedness, requiring the combined use of analytic semigroup theory and of an interpolation technique. The main contribution of the paper is that we show that, in spite of the lack of exponential stabilizability, we can define a wellposed LQR problem for which a Riccati based approach to design feedback controls can be implemented.
title LQR control for a system describing the interaction between a floating solid and the surrounding fluid
topic Optimization and Control
93C20, 93B52, 35Q35, 49J21
url https://arxiv.org/abs/2406.08072