Modeling and control of smart material ...
Type de document :
Autre communication scientifique (congrès sans actes - poster - séminaire...): Communication dans un congrès avec actes
Titre :
Modeling and control of smart material based actuator using energetic macroscopic representation
Auteur(s) :
Ghenna, Sofiane [Auteur]
Matériaux et Acoustiques pour MIcro et NAno systèmes intégrés - IEMN [MAMINA - IEMN]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Grondel, Sebastien [Auteur]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Matériaux et Acoustiques pour MIcro et NAno systèmes intégrés - IEMN [MAMINA - IEMN]
INSA Institut National des Sciences Appliquées Hauts-de-France [INSA Hauts-De-France]
Cattan, Eric [Auteur]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Matériaux et Acoustiques pour MIcro et NAno systèmes intégrés - IEMN [MAMINA - IEMN]

Matériaux et Acoustiques pour MIcro et NAno systèmes intégrés - IEMN [MAMINA - IEMN]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Grondel, Sebastien [Auteur]

Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Matériaux et Acoustiques pour MIcro et NAno systèmes intégrés - IEMN [MAMINA - IEMN]
INSA Institut National des Sciences Appliquées Hauts-de-France [INSA Hauts-De-France]
Cattan, Eric [Auteur]

Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Matériaux et Acoustiques pour MIcro et NAno systèmes intégrés - IEMN [MAMINA - IEMN]
Titre de la manifestation scientifique :
Workshop for Multi-Functional Materials: from Synthesis to Applications
Organisateur(s) de la manifestation scientifique :
Université Polytechnique Hauts-de-France
Ville :
Valenciennes
Pays :
France
Date de début de la manifestation scientifique :
2023-06-27
Mot(s)-clé(s) en anglais :
conducting polymer micro-actuator
Energetic macroscopic representation
Modeling
Control
Energetic macroscopic representation
Modeling
Control
Discipline(s) HAL :
Sciences de l'ingénieur [physics]
Résumé en anglais : [en]
Conducting polymers (CP) have emerged as promising soft materials for actuation in various applications depending on their processing characteristics, doping level, redox properties, and whether the charge transport is ...
Lire la suite >Conducting polymers (CP) have emerged as promising soft materials for actuation in various applications depending on their processing characteristics, doping level, redox properties, and whether the charge transport is purely electronic or mixed ionic/electronic. These applications are being explored in a number of devices, especially for microelectromechanical systems such as micro grippers, micro pumps and tactile feedback interfaces. Moreover, these soft materials are considered as an “artificial muscle” and can be used as a locomotion systems. They are also believed to be utilized in potential biomedical applications such as steerable micro-catheters for minimal invasive surgery, manipulators for microscopy, microvalve for drug-delivery and so on.In this work, a model to describe the electrochemomechanical behavior of conducting polymer based tri-layer transducer is proposed. This model will be used for simulation, control and estimation purposes. Energetic Macroscopic Representation (EMR) has been investigated in order to provide a displacement estimator and an inversion-based control for position feedback of the conducting polymer based actuator.This work is illustrated with experimental and simulation results.The used EMR is a synthetic graphical tool based on the principle of action and reaction between elements. It is used to unify the models of different physical domains and allows to visualize easily the energetic relationship between all parts of the complete system. EMR highlights the physical causality (i.e. integral causality) and is used to deduce the control scheme in a systematic way.Lire moins >
Lire la suite >Conducting polymers (CP) have emerged as promising soft materials for actuation in various applications depending on their processing characteristics, doping level, redox properties, and whether the charge transport is purely electronic or mixed ionic/electronic. These applications are being explored in a number of devices, especially for microelectromechanical systems such as micro grippers, micro pumps and tactile feedback interfaces. Moreover, these soft materials are considered as an “artificial muscle” and can be used as a locomotion systems. They are also believed to be utilized in potential biomedical applications such as steerable micro-catheters for minimal invasive surgery, manipulators for microscopy, microvalve for drug-delivery and so on.In this work, a model to describe the electrochemomechanical behavior of conducting polymer based tri-layer transducer is proposed. This model will be used for simulation, control and estimation purposes. Energetic Macroscopic Representation (EMR) has been investigated in order to provide a displacement estimator and an inversion-based control for position feedback of the conducting polymer based actuator.This work is illustrated with experimental and simulation results.The used EMR is a synthetic graphical tool based on the principle of action and reaction between elements. It is used to unify the models of different physical domains and allows to visualize easily the energetic relationship between all parts of the complete system. EMR highlights the physical causality (i.e. integral causality) and is used to deduce the control scheme in a systematic way.Lire moins >
Langue :
Anglais
Comité de lecture :
Oui
Audience :
Internationale
Vulgarisation :
Non
Source :