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Fractional order systems : modeling and control applications /

This book aims to propose implementations and applications of Fractional Order Systems (FOS). It is well known that FOS can be applied in control applications and systems modeling, and their effectiveness has been proven in many theoretical works and simulation routines. A further and mandatory step...

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Detalles Bibliográficos
Clasificación:Libro Electrónico
Otros Autores: Caponetto, R. (Riccardo), 1966-
Formato: Electrónico eBook
Idioma:Inglés
Publicado: New Jersey : World Scientific, ©2010.
Colección:World Scientific series on nonlinear science. Monographs and treatises ; v. 72.
Temas:
Acceso en línea:Texto completo

MARC

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245 0 0 |a Fractional order systems :  |b modeling and control applications /  |c Riccardo Caponetto [and others]. 
260 |a New Jersey :  |b World Scientific,  |c ©2010. 
300 |a 1 online resource (xxi, 178 pages) :  |b illustrations 
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490 1 |a World Scientific series on nonlinear science. Series A, Monographs and treatises ;  |v v. 72 
504 |a Includes bibliographical references (pages 167-175) and index. 
588 0 |a Print version record. 
520 |a This book aims to propose implementations and applications of Fractional Order Systems (FOS). It is well known that FOS can be applied in control applications and systems modeling, and their effectiveness has been proven in many theoretical works and simulation routines. A further and mandatory step for FOS real world utilization is their hardware implementation and applications on real systems modeling. With this viewpoint, introductive chapters on FOS are included, on the definition of stability region of Fractional Order PID Controller and Chaotic FOS, followed by the practical implementati. 
505 0 |a 1. Fractional order systems. 1.1. Fractional order differintegral operator : historical notes. 1.2. Preliminaries and definitions. 1.3. Laplace transforms and system representation. 1.4. General properties of the fractional system. 1.5. Impulse response of a general fractional system. 1.6. Numerical methods for calculation of fractional derivatives and integrals. 1.7. Fractional LTI systems. 1.8. Fractional nonlinear systems. 1.9. Stability of fractional LTI systems. 1.10. Stability of fractional nonlinear systems -- 2. Fractional order PID controller and their stability regions definition. 2.1. Introduction. 2.2. Problem characterization. 2.3. Theory for analyzing systems with time delays. 2.4. Stability regions with PI[symbol]D[symbol] controller. 2.5. Results -- 3. Fractional order chaotic systems. 3.1. Introduction. 3.2. Concept of Chua's system. 3.3. Fractional-order Van der Pol oscillator. 3.4. Fractional-order Duffing's oscillator. 3.5. Fractional-order Lorenz's system. 3.6. Fractional-order Genesio-Tesi system. 3.7. Fractional-order Lu's system. 3.8. Fractional-order Rossler's system. 3.9. Fractional-order Newton-Leipnik system. 3.10. Fractional-order Lotka-Volterra system. 3.11. Concept of Volta's system -- 4. Field programmable gate array implementation. 4.1. Numerical fractional integration. 4.2. Grünwald-Letnikov fractional derivatives. 4.3. The "short-memory" principle. 4.4. FPGA hardware implementation -- 5. Microprocessor implementation and applications. 5.1. Introduction. 5.2. Fractional controller realized by PIC processor. 5.3. Temperature control of a solid by PC and PCL 812. 5.4. Temperature control of a heater by PLC BR 2005. 5.5. Concluding remarks -- 6. Field programmable analog array implementation. 6.1. The FPAAs development system. 6.2. Experimental results -- 7. Switched capacitor integrated circuit design. 7.1. Introduction. 7.2. Passive and active filters. 7.3. Switched capacitors filters. 7.4. Design of sampled data filters. 7.5. Switched capacitor fundamental circuits. 7.6. Circuital implementation of the fractional order integrator. 7.7. Switched capacitors implementation of fractional order integrator. 7.8. Results -- 8. Fractional order model of IPMC. 8.1. Fractional model identification introduction. 8.2. Ionic Polymer Metal Composites (IPMC). 8.3. Actuation mechanism on IPMCs. 8.4. State-of-the-art for IPMC models. 8.5. Experimental setup. 8.6. Marquardt algorithm for the least squares estimation. 8.7. Fractional models for IPMC actuators. 
590 |a eBooks on EBSCOhost  |b EBSCO eBook Subscription Academic Collection - Worldwide 
650 0 |a Fractional calculus. 
650 0 |a Mathematical physics. 
650 0 |a PID controllers  |x Mathematical models. 
650 0 |a Field programmable gate arrays  |x Mathematical models. 
650 4 |a Mathematics. 
650 4 |a Physics. 
650 4 |a Science. 
650 6 |a Dérivées fractionnaires. 
650 6 |a Physique mathématique. 
650 6 |a Régulateurs PID  |x Modèles mathématiques. 
650 6 |a Réseaux logiques programmables par l'utilisateur  |x Modèles mathématiques. 
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650 7 |a Fractional calculus  |2 fast 
650 7 |a Mathematical physics  |2 fast 
700 1 |a Caponetto, R.  |q (Riccardo),  |d 1966- 
776 0 8 |i Print version:  |t Fractional order systems.  |d Singapore ; Hackensack, NJ : World Scientific, ©2010  |z 9789814304191  |w (OCoLC)609931467 
830 0 |a World Scientific series on nonlinear science.  |n Series A,  |p Monographs and treatises ;  |v v. 72. 
856 4 0 |u https://ebsco.uam.elogim.com/login.aspx?direct=true&scope=site&db=nlebk&AN=340723  |z Texto completo 
880 0 |6 505-00/(S  |a Contents -- Preface -- Acknowledgments -- List of Figures -- List of Tables -- 1. Fractional Order Systems -- 1.1 Fractional Order Differintegral Operator: Historical Notes -- 1.2 Preliminaries and Definitions -- 1.3 Laplace Transforms and System Representation -- 1.4 General Properties of the Fractional System -- 1.5 Impulse Response of a General Fractional System -- 1.6 Numerical Methods for Calculation of Fractional Derivatives and Integrals -- 1.7 Fractional LTI Systems -- 1.8 Fractional Nonlinear Systems -- 1.9 Stability of Fractional LTI Systems -- 1.10 Stability of Fractional Nonlinear Systems -- 2. Fractional Order PID Controller and their Stability Regions Definition -- 2.1 Introduction -- 2.2 ProblemCharacterization -- 2.3 Theory for Analyzing Systems with Time Delays -- 2.3.1 Hermite-Biehler Theorem -- 2.3.2 Pontryagin Theorem -- 2.4 Stability Regions with PIλDµ Controller -- 2.5 Results -- 3. Fractional Order Chaotic Systems -- 3.1 Introduction -- 3.2 Concept of Chua's System -- 3.2.1 Classical Chua's Oscillator -- 3.2.2 Chua-Hartley's Oscillator -- 3.2.3 Chua-Podlubny's Oscillator -- 3.2.4 New Fractional-Order Chua's Oscillator -- 3.2.4.1 Experimental Measurements -- 3.2.4.2 Simulation Results -- 3.3 Fractional-Order Van der Pol Oscillator -- 3.4 Fractional-Order Duffing's Oscillator -- 3.5 Fractional-Order Lorenz's System -- 3.6 Fractional-OrderGenesio-Tesi System -- 3.7 Fractional-Order Lu's System -- 3.8 Fractional-Order Rossler's System -- 3.9 Fractional-Order Newton-Leipnik System -- 3.10 Fractional-Order Lotka-Volterra System -- 3.11 Concept of Volta's System -- 3.11.1 Integer-Order Volta's System -- 3.11.2 Fractional-Order Volta's System -- 3.11.2.1 Case I: Commensurate Order -- 3.11.2.2 Case II: Incommensurate Order -- 4. Field Programmable Gate Array Implementation -- 4.1 Numerical Fractional Integration. 
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