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Detailed and Averaged Models for a 401-Level MMC–HVDC System

IEEE Transactions on Power Delivery · 2012 · Vol. 27(3) · pp. 1501–1508
Jaime PeraltaHani SaadS. DennetièreJean MahseredjianSamuel Nguefeu

Abstract

Voltage-source-converter (VSC) technologies present a bright opportunity in a variety of fields within the power system industry. New modular multilevel converters (MMCs) are expected to supersede two- and three-level VSC-based technologies for HVDC applications due to their recognized advantages in terms of scalability, performance, and efficiency. The computational burden introduced by detailed modeling of MMC-HVDC systems in electromagnetic-transients (EMT)-type programs complicates the study of transients especially when these systems are integrated into a large network. This paper presents a novel average-value model (AVM) for efficient and accurate representation of a detailed MMC-HVDC system. It also develops a detailed 401-level MMC-HVDC model for validating the AVM and studies the performance of both models when integrated into a large 400-kV transmission system in Europe. The results show that the AVM is significantly more efficient while maintaining its accuracy for the dynamic response of the overall system.

HVDC Systems and Fault ProtectionHigh-Voltage Power Transmission SystemsThermal Analysis in Power TransmissionModular designConvertersElectric power systemElectronic engineeringVoltage sourceScalabilityComputer scienceTransmission systemEngineeringHigh-voltage direct current
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References
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Dynamic Performance of a Modular Multilevel Back-to-Back HVDC System
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IEEE Transactions on Industrial Electronics · 2002 · 6,632 citations
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