4.6 Review

Cascaded- and Modular-Multilevel Converter Laboratory Test System Options: A Review

Journal

IEEE ACCESS
Volume 9, Issue -, Pages 44718-44737

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/ACCESS.2021.3066261

Keywords

Hardware; Control systems; Multilevel converters; Topology; Capacitors; HVDC transmission; Insulated gate bipolar transistors; AC-DC power converters; HVDC transmission; modular multilevel converters

Funding

  1. University of Manchester - National Innovation Allowance project VSC-HVDC Model Validation and Improvement''
  2. Dr. Heath's iCASE Ph.D. studentship through Engineering and Physical Sciences Research Council (EPSRC)
  3. National Grid
  4. Imperial College London - EPSRC through the HubNet Extension [EP/N030028/1]
  5. iCASE Ph.D. Studentship - EPSRC
  6. CDT in Future Power Networks [EP/L015471/1]
  7. University of New South Wales (UNSW) - Solar Flagships Program through the Education Infrastructure Fund (EIF)
  8. Australian Research Council [DECRA-DE170100370]
  9. Basque Government through the project HVDC-LINK3 [ELKARTEK KK-2017/00083]
  10. L2EP research group at the University of Lille - French TSO (RTE)
  11. Hauts-de-France region of France
  12. European Regional Development Fund [FEDER 17007725]
  13. EDF Energy
  14. EPSRC [EP/N030028/1] Funding Source: UKRI

Ask authors/readers for more resources

This study discusses the increasing importance of cascaded multilevel converters and modular multilevel converters in power systems, as well as design considerations and lessons learned in constructing laboratory-scale prototype CMCs.
The increasing importance of cascaded multilevel converters (CMCs), and the sub-category of modular multilevel converters (MMCs), is illustrated by their wide use in high voltage DC connections and in static compensators. Research is being undertaken into the use of these complex pieces of hardware and software for a variety of grid support services, on top of fundamental frequency power injection, requiring improved control for non-traditional duties. To validate these results, small-scale laboratory hardware prototypes are often required. Such systems have been built by many research teams around the globe and are also increasingly commercially available. Few publications go into detail on the construction options for prototype CMCs, and there is a lack of information on both design considerations and lessons learned from the build process, which will hinder research and the best application of these important units. This paper reviews options, gives key examples from leading research teams, and summarizes knowledge gained in the development of test rigs to clarify design considerations when constructing laboratory-scale CMCs.

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