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Power system monitoring and control /

"Providing full coverage of the basic principles on the subject, Wide Area Power System Monitoring and Control highlights key technologies for monitoring, protection, and control. The strong author team explores a host of cutting-edge topics, including renewable energy sources, smart grids, wid...

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Detalles Bibliográficos
Clasificación:Libro Electrónico
Autor principal: Bevrani, Hassan
Otros Autores: Watanabe, Masayuki (Electrical engineer), Mitani, Yasunori
Formato: Electrónico eBook
Idioma:Inglés
Publicado: Hoboken, New Jersey : Wiley, 2014.
Temas:
Acceso en línea:Texto completo (Requiere registro previo con correo institucional)

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100 1 |a Bevrani, Hassan. 
245 1 0 |a Power system monitoring and control /  |c Hassan Bevrani, Masayuki Watanabe, Yasunori Mitani. 
264 1 |a Hoboken, New Jersey :  |b Wiley,  |c 2014. 
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520 |a "Providing full coverage of the basic principles on the subject, Wide Area Power System Monitoring and Control highlights key technologies for monitoring, protection, and control. The strong author team explores a host of cutting-edge topics, including renewable energy sources, smart grids, wide area stabilizing, as well as coordinated voltage regulation and angle oscillation damping. Complemented by end-of-chapter problems and solutions, as well as case studies, this comprehensive handbook provides engineers/operators and graduate students with an in-depth overview of WPSMC understanding, analysis, synthesis, and implementation"--  |c Provided by publisher 
520 |a "The book is a reference for researchers and engineers working on power system control and operation"--  |c Provided by publisher 
504 |a Includes bibliographical references and index. 
588 0 |a Print version record and CIP data provided by publisher. 
505 0 |6 880-01  |a Preface vii -- About the Author ix -- About the Contributor ix -- INTRODUCTION 1 -- Chapter 1: Beginning Your CPA Review Program 3 -- Chapter 2: Examination Grading 17 -- Chapter 3: The Solutions Approach 19 -- Chapter 4: Taking The Examination 27 -- Chapter 5: Exam Content Overview 31 -- FINANCIAL ACCOUNTING AND REPORTING 39 -- Module 9: Basic Theory and Financial Reporting 41 -- Module 10: Inventory 217 -- Module 11: Fixed Assets 267 -- Module 12: Monetary Current Assets and Current Liabilities 329 -- Module 13: Present Value 395 -- Module 14: Deferred Taxes 537 -- Module 15: Stockholders' Equity 577 -- Module 16: Investments 639 -- Module 17: Statement of Cash Flows 687 -- Module 18: Business Combinations and Consolidations 725 -- Module 19: Derivative Instruments and Hedging Activities 785 -- Module 20: Miscellaneous 825 -- Module 21: Governmental (State and Local) Accounting 897 -- Module 22: Not-for-Profit Accounting 983 -- APPENDICES 1017 -- Appendix A: Outlines of Accounting Pronouncements 1019 -- Appendix B: Financial Accounting and Reporting Sample Examination 1137 -- Appendix C: Sample Financial Accounting and Reporting Testlet Released by AICPA 1171 -- Appendix D: 2014 Released AICPA Questions for Financial Accounting and Reporting 1179 -- INDEX 1201. 
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650 0 |a Electric power systems  |x Control. 
650 6 |a Réseaux électriques (Énergie)  |x Régulation. 
650 7 |a TECHNOLOGY & ENGINEERING  |x Power Resources  |x Alternative & Renewable.  |2 bisacsh 
650 7 |a Electric power systems  |x Control  |2 fast 
700 1 |a Watanabe, Masayuki  |c (Electrical engineer) 
700 1 |a Mitani, Yasunori. 
776 0 8 |i Print version:  |a Bevrani, Hassan.  |t Power system monitoring and control.  |d Hoboken, New Jersey : Wiley, 2014  |z 9781118450697  |w (DLC) 2013041134 
856 4 0 |u https://learning.oreilly.com/library/view/~/9781118852477/?ar  |z Texto completo (Requiere registro previo con correo institucional) 
880 0 0 |6 505-01/(S  |g Machine generated contents note:  |g 1.1.  |t Synchronized Phasor Measurement --  |g 1.2.  |t Power System Monitoring and Control with Wide-Area Measurements --  |g 1.3.  |t ICT Architecture Used in Wide-Area Power System Monitoring and Control --  |g 1.4.  |t Summary --  |t References --  |g 2.1.  |t Oscillation Characteristics in Power Systems --  |g 2.1.1.  |t Eigenvalue Analysis and Participation Factor --  |g 2.1.2.  |t Oscillation Characteristics in an Interconnected Power System --  |g 2.2.  |t Overview of Oscillation Monitoring Using Phasor Measurements --  |g 2.2.1.  |t Monitoring of the Japan Power Network --  |g 2.2.2.  |t Monitoring of the Southeast Asia Power Network --  |g 2.3.  |t WAMS-Based Interarea Mode Identification --  |g 2.4.  |t Low-Frequency Oscillation Dynamics --  |g 2.4.1.  |t Electromechanical Modes Characteristics --  |g 2.4.2.  |t Oscillation Characteristics Analyses in Southeast Asia Power Network --  |g 2.5.  |t Summary --  |t References --  |g 3.1.  |t Power System Small-Signal Stability --  |g 3.2.  |t Oscillation Model Identification Using Phasor Measurements --  |g 3.2.1.  |t Oscillation Model of the Electromechanical Mode --  |g 3.2.2.  |t Dominant Mode Identification with Signal Filtering --  |g 3.3.  |t Small-Signal Stability Assessment of Wide-Area Power System --  |g 3:3:1.  |t Simulation Study --  |g 3.3.2.  |t Stability Assessment Based on Phasor Measurements --  |g 3.3.3.  |t Stability Assessment Based on Frequency Monitoring --  |g 3.4.  |t Summary --  |t References --  |g 4.1.  |t Importance of Graphical Tools in WAMS --  |g 4.2.  |t Angle[--]Voltage Deviation Graph --  |g 4.3.  |t Simulation Results --  |g 4.3.1.  |t Disturbance in Generation Side --  |g 4.3.2.  |t Disturbance in Demand Side --  |g 4.4.  |t Voltage[--]Frequency Deviation Graph --  |g 4.4.1.  |t ΔV-ΔF Graph for Contingency Assessment --  |g 4.4.2.  |t ΔV-ΔF Graph for Load Shedding Synthesis --  |g 4.5.  |t Frequency[--]Angle Deviation Graph --  |g 4.6.  |t Electromechanical Wave Propagation Graph --  |g 4.6.1.  |t Wave Propagation --  |g 4.6.2.  |t Angle Wave and System Configuration --  |g 4.7.  |t Summary --  |t References --  |g 5.1.  |t Power System Stability and Control --  |g 5.2.  |t Angle and Voltage Control --  |g 5.3.  |t Frequency Control --  |g 5.3.1.  |t Frequency Control Dynamic --  |g 5.3.2.  |t Operating States and Power Reserves --  |g 5.4.  |t Supervisory Control and Data Acquisition --  |g 5.5.  |t Challenges, Opportunities, and New Perspectives --  |g 5.5.1.  |t Application of Advanced Control Methods and Technologies --  |g 5.5.2.  |t Standards Updating --  |g 5.5.3.  |t Impacts of Renewable Energy Options --  |g 5.5.4.  |t RESs Contribution to Regulation Services --  |g 5.6.  |t Summary --  |t References --  |g 6.1.  |t Measurement-Based Controller Design --  |g 6.2.  |t Controller Tuning Using a Vibration Model --  |g 6.2.1.  |t Vibration Model Including the Effect of Damping Controllers --  |g 6.2.2.  |t Tuning Mechanism --  |g 6.2.3.  |t Simulation Results --  |g 6.3.  |t Wide-Area Measurement-Based Controller Design --  |g 6.3.1.  |t Wide-Area Power System Identification --  |g 6.3.2.  |t Design Procedure --  |g 6.3.3.  |t Simulation Results --  |g 6.4.  |t Summary --  |t References --  |g 7.1.  |t Need for AVR[--]PSS Coordination --  |g 7.2.  |t Survey on Recent Achievements --  |g 7.3.  |t Robust Simultaneous AVR[--]PSS Synthesis Approach --  |g 7.3.1.  |t Control Framework --  |g 7.3.2.  |t Developed Algorithm --  |g 7.3.3.  |t Real-Time Implementation --  |g 7.3.4.  |t Experiment Results --  |g 7.4.  |t Wide-Area Measurement-Based Coordination Approach --  |g 7.4.1.  |t High Penetration of Wind Power --  |g 7.4.2.  |t Developed Algorithm --  |g 7.4.3.  |t Application Example --  |g 7.4.4.  |t Simulation Results --  |g 7.5.  |t Intelligent AVR and PSS Coordination Design --  |g 7.5.1.  |t Fuzzy Logic-Based Coordination System --  |g 7.5.2.  |t Simulation Results --  |g 7.6.  |t Summary --  |t References --  |g 8.1.  |t Conventional Load Shedding and New Challenges --  |g 8.1.1.  |t Load Shedding: Concept and Review --  |g 8.1.2.  |t Some Key Issues --  |g 8.2.  |t Need for Monitoring Both Voltage and Frequency --  |g 8.3.  |t Simultaneous Voltage and Frequency: Based LS --  |g 8.3.1.  |t Proposed LS Scheme --  |g 8.3.2.  |t Implementation --  |g 8.3.3.  |t Case Studies and Simulation Results --  |g 8.3.4.  |t Approach for Optimal UFVLS --  |g 8.3.5.  |t Discussion --  |g 8.4.  |t Wave Propagation-Based Emergency Control --  |g 8.4.1.  |t Proposed Control Scheme --  |g 8.4.2.  |t Simulation Results --  |g 8.5.  |t Summary --  |t References --  |g 9.1.  |t Microgrids --  |g 9.2.  |t Microgrid Control --  |g 9.3.  |t Local Controls --  |g 9.4.  |t Secondary Controls --  |g 9.5.  |t Global Controls --  |g 9.6.  |t Central/Emergency Controls --  |g 9.7.  |t Summary --  |t References --  |g 10.1.  |t Local Control Synthesis --  |g 10.1.1.  |t Robust Voltage Control Design --  |g 10.1.2.  |t Intelligent Droop-Based Voltage and Frequency Control --  |g 10.2.  |t Secondary Control Synthesis --  |g 10.2.1.  |t Intelligent Frequency Control --  |g 10.2.2.  |t ANN-Based Self-Tuning Frequency Control --  |g 10.3.  |t Global Control Synthesis --  |g 10.3.1.  |t Adaptive Energy Consumption Scheduling --  |g 10.3.2.  |t Power Dispatching in Interconnected MGs --  |g 10.4.  |t Emergency Control Synthesis --  |g 10.4.1.  |t Developed LS Algorithm --  |g 10.4.2.  |t Case Study and Simulation --  |g 10.5.  |t Summary --  |t References. 
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