Advanced control of grid-integrated renewable energy power plants : (Record no. 93022)

000 -LEADER
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005 - DATE AND TIME OF LATEST TRANSACTION
control field 20250925084040.0
006 - FIXED-LENGTH DATA ELEMENTS--ADDITIONAL MATERIAL CHARACTERISTICS--GENERAL INFORMATION
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007 - PHYSICAL DESCRIPTION FIXED FIELD--GENERAL INFORMATION
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008 - FIXED-LENGTH DATA ELEMENTS--GENERAL INFORMATION
fixed length control field 250925s2024 nju ob 001 0 eng c
010 ## - LIBRARY OF CONGRESS CONTROL NUMBER
LC control number 2024017997
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number 9781119701392
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number 9781119701415
Qualifying information (epub)
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number 9781119701408
Qualifying information (adobe pdf)
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
Cancelled/invalid ISBN 9781119701392
Qualifying information (hardback)
035 ## - SYSTEM CONTROL NUMBER
System control number 23697430
041 ## - LANGUAGE CODE
Language code of text/sound track or separate title eng
042 ## - AUTHENTICATION CODE
Authentication code pcc
050 00 - LIBRARY OF CONGRESS CALL NUMBER
Classification number TJ164
082 00 - DEWEY DECIMAL CLASSIFICATION NUMBER
Classification number 621.042
Edition number 23/eng/20240517
100 1# - MAIN ENTRY--PERSONAL NAME
Preferred name for the person Schulte, Horst,
Relator term author.
245 10 - TITLE STATEMENT
Title Advanced control of grid-integrated renewable energy power plants :
Remainder of title modelling, analysis and LMI-based control design in the Takagi-Suge /
Statement of responsibility, etc Horst Schulte.
263 ## - PROJECTED PUBLICATION DATE
Projected publication date 2408
264 #1 - PUBLICATION, DISTRIBUTION, ETC. (IMPRINT)
Place of publication, distribution, etc Hoboken, NJ :
Name of publisher, distributor, etc Wiley,
Date of publication, distribution, etc 2024.
300 ## - PHYSICAL DESCRIPTION
Extent 1 online resource
336 ## - CONTENT TYPE
Content type term text
Content type code txt
Source rdacontent
337 ## - MEDIA TYPE
Media type term computer
Media type code c
Source rdamedia
338 ## - CARRIER TYPE
Carrier type term online resource
Carrier type code cr
Source rdacarrier
504 ## - BIBLIOGRAPHY, ETC. NOTE
Bibliography, etc Includes bibliographical references and index.
505 0# - CONTENTS
Miscellaneous information Table of Contents<br/>Preface ix<br/><br/>Acronyms xi<br/><br/>Notation xiii<br/><br/>1 Introduction 1<br/><br/>1.1 Energy Transition 1<br/><br/>1.2 Problem Description 5<br/><br/>1.3 Methodological Framework 9<br/><br/>1.4 Topics of this Book 12<br/><br/>2 Modeling of Wind Turbines 15<br/><br/>2.1 Introduction 15<br/><br/>2.2 First-Principle Modeling 16<br/><br/>2.2.1 Energy Capturing: Actuator Disc Concept 16<br/><br/>2.2.1.1 Power Coefficient 18<br/><br/>2.2.1.2 Thrust Coefficient 20<br/><br/>2.2.2 Essentials of Rotor Blade Theory for Control Purpose 21<br/><br/>2.2.3 The c P –λ, c Q –λ, and c T –λ Curves 27<br/><br/>2.2.4 Wind Turbine Models with 1- and 4-DOF 32<br/><br/>2.2.5 Simulation-Based Model Validation 38<br/><br/>2.3 Control-Oriented Models in TS Form 41<br/><br/>2.3.1 Partial- and Full-Load Operating Region 41<br/><br/>2.3.2 Single-Region 1-DOF Models 42<br/><br/>2.3.3 Single-Region 2- and 3-DOF Models 47<br/><br/>2.3.3.1 Model with Tower and Rotor DOF 47<br/><br/>2.3.3.2 Model with Tower, Elastic Drive Train, and Rotor DOF 49<br/><br/>2.3.3.3 Model with Tower, Blades, and Rotor DOF 50<br/><br/>2.3.4 Multi-region Model for Disturbance Observer Design 53<br/><br/>2.3.5 Multi-region Model for Controller Design 57<br/><br/>2.4 Summary 60<br/><br/>2.5 Problems 60<br/><br/>2.6 Bibliography 61<br/><br/>3 Control of Wind Turbines 63<br/><br/>3.1 Introduction 63<br/><br/>3.2 Baseline Generator-Torque and Blade-Pitch Controller 63<br/><br/>3.3 Model-Based Control of WTs 72<br/><br/>3.3.1 Control Scheme 72<br/><br/>3.3.2 Effective Wind Speed and State Observer 72<br/><br/>3.3.3 State Feedback Design for Partial- and Full-Load Operating Region 79<br/><br/>3.3.3.1 Design of a Full-Load Region Control with State Feedback 82<br/><br/>3.3.3.2 Control-Design of Partial-Load Operating Region 85<br/><br/>3.3.3.3 Control Concept for Bumpless Transition Between Operating Regions 93<br/><br/>3.4 Model-Based Power Tracking 95<br/><br/>3.4.1 Introduction 95<br/><br/>3.4.2 Governor Concept of Synchronous Machines 96<br/><br/>3.4.3 Control-Oriented Models and Schemes 98<br/><br/>3.4.3.1 Control-oriented Model and Control Scheme for V ≥ V Rated 99<br/><br/>3.4.3.2 Control-oriented Model and Scheme for V < V Rated 100<br/><br/>3.4.4 State Feedback and Feedforward Design for Power Tracking 104<br/><br/>3.4.4.1 Controller Design for V ≥ V Rated 105<br/><br/>3.4.4.2 Controller Design for V < V Rated 109<br/><br/>3.5 Summary 111<br/><br/>3.6 Problems 112<br/><br/>3.7 Bibliography 113<br/><br/>4 Modeling and Control of Photovoltaic Power Plants 115<br/><br/>4.1 Introduction 115<br/><br/>4.2 Modeling of PV Generators 116<br/><br/>4.3 DC–DC Converter Modeling 121<br/><br/>4.3.1 Overview of Switched-Mode Converter 121<br/><br/>4.3.2 Generic State-Space Average Models 124<br/><br/>4.3.3 Circuit Design and Simulation 127<br/><br/>4.4 Voltage Control of PV Generators 131<br/><br/>4.4.1 Control-Oriented State-Space Model 131<br/><br/>4.4.2 State-Feedback Design 136<br/><br/>4.5 Demanded Power Tracking 147<br/><br/>4.5.1 Overall Control Structure 148<br/><br/>4.5.2 Model-Based Power Tracking 149<br/><br/>4.5.2.1 Performance and Robustness Analysis of the Cascaded Controller 152<br/><br/>4.5.3 Model-Free Power Tracking 154<br/><br/>4.6 Summary 160<br/><br/>4.7 Problems 160<br/><br/>4.8 Bibliography 161<br/><br/>5 Modeling and Control of Voltage Source Converters 163<br/><br/>5.1 Introduction 163<br/><br/>5.2 Three-Phase Signals and Systems 165<br/><br/>5.3 Average and Instantaneous Power 169<br/><br/>5.4 Reduced-Order VSC Model 173<br/><br/>5.5 Power Injection in the Steady State 175<br/><br/>5.6 Voltage Drop in the Steady State 176<br/><br/>5.7 Selected Control Concepts 179<br/><br/>5.7.1 Control and Functional Requirements 179<br/><br/>5.7.2 Control Scheme of Grid-Following VSC 181<br/><br/>5.7.2.1 PQ Control of Grid-Following VSC 183<br/><br/>5.7.2.2 Current Control of GFL Voltage Source Converter 184<br/><br/>5.7.3 Control Scheme of Grid-Forming VSC 185<br/><br/>5.7.3.1 PQ Control by Direct Droop-Based Voltage Control 186<br/><br/>5.7.4 Grid-Forming VSC Control With Inner-Loop Current Regulator 188<br/><br/>5.7.4.1 PQ Control as Reference Signal Generator for Lower-Level Control 189<br/><br/>5.8 Summary 190<br/><br/>5.9 Problems 190<br/><br/>5.10 Bibliography 191<br/><br/>6 Advanced Grid Integration of PV and Wind Power Plants 193<br/><br/>6.1 Introduction 193<br/><br/>6.2 Description of Test Scenarios 194<br/><br/>6.3 Integration of Wind Power Plants 197<br/><br/>6.3.1 Response to Active Power Request 198<br/><br/>6.3.2 Decrease in Wind Inflow 199<br/><br/>6.3.3 Response to Reactive Power Request 199<br/><br/>6.3.4 Grid Disturbance Rejection 202<br/><br/>6.4 Integration of PV Power Plants 205<br/><br/>6.4.1 Response to Active Power Request 205<br/><br/>6.4.2 RES Fluctuation: Irradiation Step 207<br/><br/>6.4.3 Response to Reactive Power Request 207<br/><br/>6.4.4 Grid Disturbance Rejection 207<br/><br/>6.5 Summary 210<br/><br/>6.6 Problems 211<br/><br/>6.7 Bibliography 212<br/><br/>A Modeling in the Takagi–Sugeno Framework 213<br/><br/>A.1 Introduction 213<br/><br/>A.2 Constructing TS Systems 214<br/><br/>A.2.1 Sector-Nonlinearity Approach 214<br/><br/>A.2.2 Taylor Linearization and Interpolation 215<br/><br/>B LMI Conditions for Stability Analysis and Controller Design 219<br/><br/>B.1 Introduction 219<br/><br/>B.2 Linear Matrix Inequalities 220<br/><br/>B.2.1 Basics 220<br/><br/>B.2.2 Suitable Auxiliary Lemmas 222<br/><br/>B.3 Stability Analysis of TS Systems 223<br/><br/>B.3.1 Stability of Unforced TS Systems 223<br/><br/>B.3.1.1 Asymptotic Stability 223<br/><br/>B.3.1.2 D-Stability 224<br/><br/>B.4 Relaxations 229<br/><br/>B.5 State Feedback Design for TS Systems 230<br/><br/>B.5.1 Pole Region Specification 231<br/><br/>B.5.2 Minimization of M j 233<br/><br/>B.5.3 Stability of Forced Systems 233<br/><br/>B.5.3.1 Disturbance Rejection 233<br/><br/>B.5.3.2 Input-to-State Stability 234<br/><br/>B.6 Observer Design for TS Systems 236<br/><br/>B.6.1 Pole Region Specification for Observer Design 237<br/><br/>C Renewable Energy Sources 239<br/><br/>C.1 Wind Energy Systems 239<br/><br/>C.1.1 Froude’s Actuator Disc Theory (Froude–Rankine Theorem) 239<br/><br/>C.1.2 Rotor-Equivalent Wind Speed 240<br/><br/>C.1.3 Membership Functions and Matrices of TS Multi-region Model 241<br/><br/>D Parameters of Renewable Energy Power Plants 243<br/><br/>D.1 Physical Constants 243<br/><br/>D.2 Wind Power Plant Parameters 243<br/><br/>D.3 PV Power Plant Parameters 243<br/><br/>D.4 VSC Parameters 245<br/><br/>D.5 Equivalent Grid Model Parameters 246<br/><br/>E Control Concept for Bumpless Transition Between Operating Regions 247<br/><br/>References 251<br/><br/>Index 265
520 ## - SUMMARY, ETC.
Summary, etc "This book is focused on model-based control design for renewable energy power plants (RPPs), formulated as convex optimization problems. These formulations allow for an automated generation of feed-forward gains, feedback, and observer gains with respect to the considered plant models, control requirements and design criteria. The aim of the book is to create a generic access to the problem of regenerative-energy power generation from the perspective of control engineering. (Takagi-Sugeno fuzzy models are nonlinear systems, in which the consequent part of a fuzzy rule is a mathematical formula, representing local dynamics. The strong property of the TSF can find several applications modeling dynamical systems that can be described by differential equations). The book requires a basic understanding of control engineering, modelling of dynamic systems, and control of electrical machines. For the practical exercises, knowledge of MATLAB/SIMULINK is an advantage, but not essential."--
Assigning source Provided by publisher.
545 0# - BIOGRAPHICAL OR HISTORICAL DATA
Biographical or historical note About the Author<br/>Horst Schulte, PhD, is the Head of Control Engineering Group, HTW Berlin, Germany.
588 ## - SOURCE OF DESCRIPTION NOTE
Source of description note Description based on print version record and CIP data provided by publisher; resource not viewed.
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Power-plants.
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Renewable energy sources.
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Automatic control.
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name as entry element Convex functions.
655 #4 - INDEX TERM--GENRE/FORM
Genre/form data or focus term Electronic books.
856 40 - ELECTRONIC LOCATION AND ACCESS
Uniform Resource Identifier https://onlinelibrary.wiley.com/doi/book/10.1002/9781119701415
Link text Full text is available at Wiley Online Library Click here to view
942 ## - ADDED ENTRY ELEMENTS
Source of classification or shelving scheme
Item type EBOOK
Holdings
Withdrawn status Lost status Source of classification or shelving scheme Damaged status Not for loan Permanent Location Current Location Date acquired Source of acquisition Inventory number Full call number Barcode Date last seen Price effective from Item type
          COLLEGE LIBRARY COLLEGE LIBRARY 2025-09-25 Megatexts Phil. Inc. 55406 621.042 Sch817 2024 CL-55406 2025-09-25 2025-09-25 EBOOK

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