International Journal of applied mathematics and computer science

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Paper details

Number 1 - March 2024
Volume 34 - 2024

A hierarchical observer for a non-linear uncertain CSTR model of biochemical processes

Mateusz Czyżniewski, Rafał Łangowski

Abstract
The problem of estimation of unmeasured state variables and unknown reaction kinetic functions for selected biochemical processes modelled as a continuous stirred tank reactor is addressed in this paper. In particular, a new hierarchical (sequential) state observer is derived to generate stable and robust estimates of the state variables and kinetic functions. The developed hierarchical observer uses an adjusted asymptotic observer and an adopted super-twisting sliding mode observer. The stability of the proposed hierarchical observer is investigated under uncertainty in the system dynamics. The stability analysis of the estimation error dynamics is carried out based on the methodology associated with linear parameter-varying systems and sliding mode regimes. The developed hierarchical observer is implemented in the Matlab/Simulink environment and its performance is validated via simulation. The obtained satisfactory estimation results demonstrate high effectiveness of the devised hierarchical observer.

Keywords
bioreactors, hierarchical observers, non-linear uncertain systems, observers, state estimation

DOI
10.61822/amcs-2024-0004