Design and Control of Matrix Converters -  Anindya Dasgupta,  Parthasarathi Sensarma

Design and Control of Matrix Converters (eBook)

Regulated 3-Phase Power Supply and Voltage Sag Mitigation for Linear Loads
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2017 | 1st ed. 2017
XVI, 124 Seiten
Springer Singapore (Verlag)
978-981-10-3831-0 (ISBN)
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This book describes two target applications for synchronous systems: regulated 3-phase voltage supply and voltage sag mitigation. It presents a detailed design procedure for converter switches and filters considering all steady-state, commutation and dynamic requirements. This work has evolved from previously published research by the authors, which in turn is part of a larger effort to expand the application domain of matrix converters to power systems. The objectives of the work have been categorized into the following: developing a dynamic model that provides adequate design insights; designing filters; and devising a control scheme. The low frequency dynamic model is first analyzed for regulated voltage supplies assuming balanced system. The system is modeled relative to a synchronous rotating (dq) frame linearized around an operating point. The input-output variables are related by non-diagonal transfer function matrices. Individual transfer function sub-matrices are sequentially investigated and it is shown that, depending on the input power, input voltage and filter parameters, the appearance of a set of right half zeros is possible.   The book then considers filter design, as well as general issues like ripple attenuation, regulation, reactive current loading, and filter losses. The book also addresses additional constraints that may be imposed by dynamic requirements and commutation. In the third stage, voltage controller design is detailed for a 3-phase regulated voltage supply. In dq domain, output voltage control represents a multivariable control problem. This is reduced to a single variable control problem while retaining all possible right half zeros, thereby preserving the internal stability of the system. Consequently, the standard single variable control design technique has been used to design a controller. The analytically predicted dynamic response has been verified by experimental results. It was possible to operate the system beyond the critical power boundary where the right half zeros emerge.  Lastly, the developed control approach has been extended to voltage sag mitigation with adequate modifications. A 3-wire linear load and  both symmetrical and asymmetrical voltage sags have been considered. Experimentally obtained response time for sag mitigation was found to be less than the power supply holdup time of most of the sensitive equipment. This book will be useful to both researchers and graduate students.

Dr. Anindya Dasgupta is Assistant Professor of Avionics at the Indian Institute of Space Science and Technology, Thiruvananthapuram. Dr. Dasgupta received his PhD (Electrical Engineering) from the Indian Institute of Technology (IIT) Kanpur, India. He completed his M.E. (Control System, Electrical Engineering) in 2006 at Bengal Engineering and Science University, Shibpur and B. E. (Electrical Engineering) in 2000 at the Jadavpur University, Kolkata.

Dr. Parthasarathi Sensarma is Associate Professor of Electrical Engineering at IIT Kanpur, India. Dr. Sensarma completed his PhD (Electrical Engineering) in 2001 at the Indian Institute of Science (IISc), Bangalore, India. He was awarded his M. Tech (Machine Drives and Power Electronics) in 1992 from IIT Kharagpur and B. E. E (Electrical  Engineering) in 1990 from Jadavpur University, Kolkata. He has supervised several PhD and M.Tech. students. Dr. Sensarma has filed patent application at the Indian Patent Office for seven of his projects. He has published 56 technical papers in national and international conferences and journals. 


This book describes two target applications for synchronous systems: regulated 3-phase voltage supply and voltage sag mitigation. It presents a detailed design procedure for converter switches and filters considering all steady-state, commutation and dynamic requirements. This work has evolved from previously published research by the authors, which in turn is part of a larger effort to expand the application domain of matrix converters to power systems. The objectives of the work have been categorized into the following: developing a dynamic model that provides adequate design insights; designing filters; and devising a control scheme. The low frequency dynamic model is first analyzed for regulated voltage supplies assuming balanced system. The system is modeled relative to a synchronous rotating (dq) frame linearized around an operating point. The input-output variables are related by non-diagonal transfer function matrices. Individual transfer function sub-matrices are sequentially investigated and it is shown that, depending on the input power, input voltage and filter parameters, the appearance of a set of right half zeros is possible.   The book then considers filter design, as well as general issues like ripple attenuation, regulation, reactive current loading, and filter losses. The book also addresses additional constraints that may be imposed by dynamic requirements and commutation. In the third stage, voltage controller design is detailed for a 3-phase regulated voltage supply. In dq domain, output voltage control represents a multivariable control problem. This is reduced to a single variable control problem while retaining all possible right half zeros, thereby preserving the internal stability of the system. Consequently, the standard single variable control design technique has been used to design a controller. The analytically predicted dynamic response has been verified by experimental results. It was possible to operate the system beyond the critical power boundary where the right half zeros emerge.  Lastly, the developed control approach has been extended to voltage sag mitigation with adequate modifications. A 3-wire linear load and  both symmetrical and asymmetrical voltage sags have been considered. Experimentally obtained response time for sag mitigation was found to be less than the power supply holdup time of most of the sensitive equipment. This book will be useful to both researchers and graduate students.

Dr. Anindya Dasgupta is Assistant Professor of Avionics at the Indian Institute of Space Science and Technology, Thiruvananthapuram. Dr. Dasgupta received his PhD (Electrical Engineering) from the Indian Institute of Technology (IIT) Kanpur, India. He completed his M.E. (Control System, Electrical Engineering) in 2006 at Bengal Engineering and Science University, Shibpur and B. E. (Electrical Engineering) in 2000 at the Jadavpur University, Kolkata. Dr. Parthasarathi Sensarma is Associate Professor of Electrical Engineering at IIT Kanpur, India. Dr. Sensarma completed his PhD (Electrical Engineering) in 2001 at the Indian Institute of Science (IISc), Bangalore, India. He was awarded his M. Tech (Machine Drives and Power Electronics) in 1992 from IIT Kharagpur and B. E. E (Electrical  Engineering) in 1990 from Jadavpur University, Kolkata. He has supervised several PhD and M.Tech. students. Dr. Sensarma has filed patent application at the Indian Patent Office for seven of his projects. He has published 56 technical papers in national and international conferences and journals. 

Preface 6
Contents 8
About the Authors 10
List of Figures 11
List of Tables 15
1 Introduction 17
1.1 Overview of 3-Phase Matrix Converter 21
1.1.1 Hardware Design 22
1.1.2 Commutation 24
1.1.3 Topology 30
1.1.4 Modulation 30
1.1.5 Dynamic Model for Controller Design 35
1.2 Motivation and Objectives 36
1.3 Assumptions and Scope 37
1.4 Layout of the Book 37
2 Low Frequency Dynamic Model 39
2.1 Low Frequency Gain of 3-Phase MC 40
2.1.1 Indirect Space Vector Modulation (ISVM) Approach 41
2.2 Linearized Model 51
2.3 Composition of Gc(s) 57
2.3.1 Poles and Zeros of CdTM 57
2.3.2 Poles and Zeros of Gc(s) 58
2.4 Concluding Remarks 64
3 Filter Design 67
3.1 Input Filter Design 68
3.1.1 Attenuation to Switching Frequency Ripple and Gain to Lower Order Harmonics 69
3.1.2 Voltage Regulation and Reactive Current Loading 71
3.1.3 Selecting Damping Resistor Rd 72
3.1.4 Lower Limit of Cf 75
3.1.5 Effect of Ls 83
3.1.6 Design Modifications for a Non-minimum Phase Plant 84
3.2 Output Filter 85
3.2.1 Lower Limit of Lo 86
3.3 Selection of Parameter Values 87
3.4 Results and Discussion 88
3.4.1 Open Loop Experimental Results 89
3.5 Concluding Remarks 92
4 Controller Design for Regulated Voltage Supply 93
4.1 Specifications and Assumptions 93
4.2 SISO Based Control 94
4.2.1 Nff(s) and Hv(s) 96
4.3 Experimental Results and Discussion 101
4.4 Concluding Remarks 105
5 Voltage Sag Mitigation 106
5.1 Topology and Voltage Injection Method 107
5.2 Plant Model 109
5.3 Control Scheme for DVR 111
5.3.1 FB Controller 112
5.3.2 FF Controller 115
5.4 Experimental Results and Discussion 116
5.5 Concluding Remarks 121
6 Conclusion 122
6.1 Conclusions and Contributions 122
6.2 Scope of Future Work 123
6.3 Relevance of This Work at Present 123
Appendix A Derivations Associated with Low Frequency Dynamic Model 125
Appendix B 3 Phase Direct Matrix Converter Prototype 129
Appendix C Phase Locked Loop 131
References 134

Erscheint lt. Verlag 30.3.2017
Reihe/Serie Energy Systems in Electrical Engineering
Zusatzinfo XVI, 124 p. 75 illus.
Verlagsort Singapore
Sprache englisch
Themenwelt Technik Elektrotechnik / Energietechnik
Technik Maschinenbau
Schlagworte 3-phase AC-AC Conversion • Control of Power Electronic Converters • Dynamic Modelling of Converters • matrix converter • Power Electronics
ISBN-10 981-10-3831-7 / 9811038317
ISBN-13 978-981-10-3831-0 / 9789811038310
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