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Titre: | Modeling, Identification and Control Strategies for a Reverse Osmosis-Based Desalination System |
Autre(s) titre(s): | Modélisation, Identification et Commande d’un Système de Dessalement par Osmose Inverse |
Auteur(s): | Guendouz, Khaled Benseddik, Akram Boucherit, Mohamed Seghir, Directeur de thèse Benkouider, Ouarda, Directeur de thèse |
Mots-clés: | Desalination Reverse Osmosis Modeling Predictive Control PID Robustness |
Date de publication: | 2025 |
Résumé: | This thesis focuses on the modeling, identification, and control of a reverse osmosis (RO) desalination system. In response to the growing scarcity of freshwater resources, RO technology offers a viable and sustainable solution. The first phase involves the development of a dynamic model based on experimental data, accurately capturing the interactions between key variables such as feed pressure, pH, permeate flow rate, and conductivity. Two control strategies are explored : Model Predictive Control (MPC), implemented on both decoupled and multivariable models, and classical PID control, including an improved IMC-PID version. The results obtained highlight the performance, robustness, and limitations of each control approach under model uncertainties |
Description: | Mémoire de Projet de Fin d’Études:Automatique: Alger, École Nationale Polytechnique : 2025 |
URI/URL: | http://repository.enp.edu.dz/jspui/handle/123456789/11219 |
ISSN: | EP00896 |
Collection(s) : | Département Automatique |
Fichier(s) constituant ce document :
Fichier | Description | Taille | Format | |
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pfe_2025_aut_GUENDOUZ_Khaled_BENSEDDIK_Akram.pdf | 11.69 MB | Adobe PDF | Voir/Ouvrir |
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