Dihao Ma’s research while affiliated with The Ohio State University and other places

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Publications (10)


Describing Function based Analyses for Direct Power Control of Back to Back Modular Multilevel Converter with Advanced Grid Support
  • Article

January 2025

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3 Reads

IEEE Journal of Emerging and Selected Topics in Power Electronics

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Ramanathan Thiagarajan

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[...]

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Brian Fedish

This paper presents a Port Controlled Hamiltonian based direct power control architecture for a back-to-back modular multilevel converter system connecting two ac sources at different frequencies. The system features advanced grid support functionalities based on IEEE 1547-2018, implemented on the inverter side. The rectifier side controller ensures reference following for active and/or reactive powers and maintains the commanded dc bus voltage. The inverter side controller ensures power command following for active and reactive powers.The proposed control architecture is designed to suppress second harmonic oscillations in powers during unbalanced grid voltage sags by dynamically adjusting the currents on each ac side. This also ensures effective elimination of any second harmonic oscillations in the equivalent dc bus voltage. Validation is performed on an OPAL-RT real-time platform with case studies on unbalanced and balanced sags, demonstrating the controller’s effectiveness during real time implementation. A reduced-scale laboratory prototype further verifies these case studies, with experimental results for balanced sags due to grid simulator limitations. The results confirm the robustness and efficiency of the proposed control strategy in ensuring stable and reliable operation under various grid conditions.




DC Microgrid Stabilization: Using T-Type Modular DC Circuit Breaker (T-Breaker) with Shunt Compensation

January 2023

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3 Reads

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3 Citations

IEEE Industry Applications Magazine

The DC microgrid loads that are power electronics-based often behave as constant power loads (CPLs). DC grid destabilization could occur during load power changes or bus voltage transients because of the negative impedance behavior of these CPLs. When integrating an energy storage, the newly suggested T-type modular dc circuit breaker (T-breaker) can realize current limiting and breaking, and grid transient compensation capabilities as an all-in-one device. Similar to voltage and current compensation devices in ac systems, the ride-through of dc grid transients can be accomplished utilizing the T-breaker’s shunt (current) and series (voltage) compensation capabilities. Realizing shunt compensation of the T-breaker using the smart resistor (SR) control is the focus in this work. The article discusses system modeling, small signal stability, large signal stability, simulation, and also shows experimental validations.







Citations (5)


... The introduction of high-frequency converters and power electronic devices has made it more convenient and efficient to integrate distributed power sources into the grid [1,2]. Renewable energy sources such as wind and photovoltaic (PV) power are gradually transitioning from supplementary to primary energy sources, with their share continuing to rise [3][4][5][6]. Since its development in the 1990s, flexible direct current (DC) transmission technology has emerged as a new form of DC transmission following AC transmission and conventional DC transmission, achieving significant progress [7][8][9]. ...

Reference:

Hardware Design for Cascade-Structure, Dual-Stage, Current-Limiting, Solid-State DC Circuit Breaker
DC Microgrid Stabilization: Using T-Type Modular DC Circuit Breaker (T-Breaker) with Shunt Compensation
  • Citing Article
  • January 2023

IEEE Industry Applications Magazine

... When energy storage devices are integrated across its arms, it can accomplish the compensation tasks. When controlling T-Breaker's vertical arm's submodules, shunt (current) injection/absorption can be achieved [20]. When the two horizontal arms' submodules are controlled, series (voltage) insertion/absorption can be realized. ...

Shunt Compensation for DC Microgrid Stabilization Utilizing T-Type Modular Dc Circuit Breaker
  • Citing Conference Paper
  • March 2022

... To overcome the abovementioned challenges, many methodologies have been applied to develop inverter topologies, such as multilevel techniques [28,29]. In the meantime, numerous studies have proposed different sophisticated control strategies to enhance the inverter performance [30][31][32]. ...

Hardware Design of Medium Voltage SiC-based Modular Multilevel Converters for Grid-tied Applications
  • Citing Conference Paper
  • November 2021

... Fullbridge T-type modular SSCB based on SiC is proposed for medium voltage applications. This topology not only interrupts the fault current rapidly, but also ensures the dc grid stability in case of load power or voltage fluctuations [27]. Another modular MVDC SSCBs based on scalable power electronics building block (PEBB) units using SiC MOSFETs which provides flexible series and parallel expansion is elucidated in [28]. ...

Development of a 1 kV, 500 A, SiC-Based T-Type Modular DC Circuit Breaker (T-Breaker)
  • Citing Conference Paper
  • November 2021

... Medium voltage (MV) converters play an indispensable role in numerous critical applications, such as MV motor drives and grid interface converters to make the grid more stable and resilient [1]- [4]. Breakthrough performance in MV converters is expected in the near future because of the rapid development of high voltage (> 3.3 kV) SiC MOSFETs with superior device performance for power electronics applications [5]- [11]. Compared to Si IGBTs prevalent in MV converters nowadays, high voltage SiC MOSFETs possess higher blocking voltage, faster switching transients, and lower switching loss, and hence the capability to operate with >10X higher switching frequency [11]- [15]. ...

A Survey on Recent Advances of Medium Voltage Silicon Carbide Power Devices
  • Citing Conference Paper
  • September 2018