Modelling and Control Development of a Cascaded NPC-Based MVDC Converter for Harmonic Analysis Studies in Power Distribution Networks †
Abstract
:1. Introduction
1.1. Background
- Connectivity between AC networks irrespective of line voltage amplitude, phase angle, phase sequence, or operational frequency synchronisation requirements;
- Flexible controllability of active power flow between linked networks, allowing more renewables systems to be hosted;
- Control of reactive power at each AC terminal independently, allowing for dynamic voltage regulation. Additionally, the MVDC system may accomplish Static Synchronous Compensator (STATCOM) functions;
- The inclusion of advanced control systems can help isolate faults, improve the power quality, and enable ancillary services capabilities.
1.2. Literature Survey
1.3. Aim and Contributions
1.4. Paper Organization
2. Different Structures of MVDC Systems
2.1. Back-to-Back MVDC System Topology
2.2. Multi-Terminal MVDC System Topology
2.3. Unified Power Flow Control System Topology
3. Multilevel Power Converter Topologies
- The output voltage and current of a multilevel converter have reduced distortions in comparison to a two-level converter;
- Because multilevel converters have several output voltages levels, the dv/dt stress is decreased, which in turn lessens the Electromagnetic Compatibility (EMC) problems;
- The switches of multilevel converters can be operated using PWM of the fundamental frequency or higher switching frequencies. However, high switching frequency causes higher switching losses, which decrease the overall efficiency of the conversion system;
- The multilevel converter makes better utilisation of the DC-link voltage when compared to the two-level converter.
3.1. Cascaded H-Bridge (CHB) Multilevel Converter
- ○
- The levels of the AC output voltage are more than the number of H-bridge units used;
- ○
- With a high number of H-bridge units, an AC output with very low harmonic distortions can be achieved even with a lower switching frequency;
- ○
- System modification simplicity due to the series H-bridges modularity.
- ○
- The main constraint of the CHB converter is that independent DC capacitors (or sources) are essential for each H-bridge unit that consequently restricting its application;
- ○
- Due to harmonic distortion reductions requirements, a high number of H-bridges is used for a high number of AC output levels, which means more DC capacitors and thus a bulky and costly system;
- ○
- The complexity of the control system to operate the CHB converter for maintaining equal voltages across the DC capacitors when controlling output active and reactive power components.
3.2. Neutral Point-Clamped (NPC) Multilevel Converter
- ○
- A common DC-link is shared by the three-phase terminals, minimising the number of DC capacitors required, and system size and cost;
- ○
- Since the DC-link voltage is divided through the midpoint, lower voltage rating switches can be utilised, and voltage stress issues can be minimized;
- ○
- Lower output harmonic distortions and high efficiency with a lower switching frequency;
- ○
- The pre-charging of the DC capacitors as a group is possible, thus improving system dynamics.
- ○
- Increase in the number of diodes required for clamping;
- ○
- Voltages across the DC capacitors must be balanced for all operating conditions, thus requiring an effective control system.
3.3. Flying Capacitor Clamped (FCC) Multilevel Converter
- ○
- The voltage across capacitors can be balanced by the redundant switching states available;
- ○
- Short duration outages ride through capability due to the increased number of capacitors.
- ○
- The high cost and the bulky size of the system due to many capacitors in comparison to the NPC topology;
- ○
- Requirement of a separate pre-charge circuit and complicated control system for voltage balancing of clamping and DC link capacitors.
4. Modelling and Control Development of an MVDC Converter
4.1. Topology and Specifications
4.2. MVDC Converter Control System
- Inner Control Loop
- Outer Control Loop
5. PI Controller Parameters Design
6. Pulse Width Modulation Techniques
6.1. Interleaved SPWM Technique
6.2. Interleaved SPWM Application in the MVDC Converter
7. MVDC System Performance Analysis
7.1. The Fundamental Frequency Performance of the MVDC Converter
7.2. The Harmonic Performance of the MVDC Converter
8. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Nomenclature
AC | Alternating Current |
CHB | Cascaded H-Bridge |
DC | Direct Current |
DER | Distributed Energy Resources |
DG | Distributed Generation |
dq | Direct-Quadrature |
EMC | Electromagnetic Compatibility |
FCC | Flying Capacitor-Clamped |
FFT | Fast Fourier Transform |
LHZ | Left-Hand Zero |
MVDC | Medium Voltage Direct Current |
NPC | Neutral Point-Clamped |
p.u. | per unit |
PE | Power Electronics |
PI | Proportional Integral |
PLL | Phase-Locked Loop |
PoC | Point of Connection |
SPWM | Sinusoidal Pulse-Width Modulation |
STATCOM | Static Synchronous Compensator |
THD | Total Harmonic Distortions |
VSC | Voltage Source Converter |
Transformer Inductance Voltage | |
Power Converter Terminal Voltage | |
PoC Voltage | |
Integral Controller Gain | |
LHZ Frequency | |
PI Proportional Gain | |
PI Integral Gain | |
mf | Frequency Modulation Index |
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Parameter | Value |
---|---|
MVDC Capacity | 30 MW |
Line Voltage | 33 kV–60 Hz |
DC Voltage | ±27 kV |
Transformer Rating (each) | 17 MVA |
Transformer Reactance (each) | 0.2 p.u. |
Switching Frequency () | 900 Hz |
DC Reactor | 6 mH |
Grounding Resistor | 10 Ω |
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Alghamdi, T.A.H.; Anayi, F.; Packianather, M. Modelling and Control Development of a Cascaded NPC-Based MVDC Converter for Harmonic Analysis Studies in Power Distribution Networks. Energies 2022, 15, 4867. https://doi.org/10.3390/en15134867
Alghamdi TAH, Anayi F, Packianather M. Modelling and Control Development of a Cascaded NPC-Based MVDC Converter for Harmonic Analysis Studies in Power Distribution Networks. Energies. 2022; 15(13):4867. https://doi.org/10.3390/en15134867
Chicago/Turabian StyleAlghamdi, Thamer A. H., Fatih Anayi, and Michael Packianather. 2022. "Modelling and Control Development of a Cascaded NPC-Based MVDC Converter for Harmonic Analysis Studies in Power Distribution Networks" Energies 15, no. 13: 4867. https://doi.org/10.3390/en15134867
APA StyleAlghamdi, T. A. H., Anayi, F., & Packianather, M. (2022). Modelling and Control Development of a Cascaded NPC-Based MVDC Converter for Harmonic Analysis Studies in Power Distribution Networks. Energies, 15(13), 4867. https://doi.org/10.3390/en15134867