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Pre-sizing of a modular high power density DC/DC converter with GaN components

Author

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  • Pniak, Lucas
  • Revol, Bertrand
  • Quéval, Loïc
  • Ngoua Teu Magambo, Jean-Sylvio
  • Béthoux, Olivier

Abstract

Finding the most appropriate architecture to achieve a function is a major engineering challenge. In the power conversion context, the question that arises is: what is the best trade-off between an architecture based on a single high-power converter and another based on the combination of multiple low-power converters? This article aims to answer this question in the specific case of the isolated interface between the low voltage (28VDC) and high voltage (±270VDC) buses of an aircraft. Towards this goal, the targeted power electronics converter is carefully modeled in order to obtain an accurate and fast computing model. A technological database of the different usable components is then used to feed an optimization algorithm. The execution of the latter achieves an attractive and robust result showing an excellent performance in terms of power-to-weight ratio, which is the key index of this study. The precision and speed of this computer-aided design is based on analytical models that are quick to run and therefore enable exploring almost exhaustively the search space. More specifically, the high-frequency transformer has a large relative mass and generates significant losses that are difficult to assess. A major modeling effort has been undertaken and has been enabled to define a simplified but convincing and accurate model (successfully assessed on a wide bandwidth using an experimental setup). It was used for the first time in this optimization process. According to the targeted aeronautical specifications, the two best solutions would make it possible to achieve a mass power density of 4.5kW/kg, i.e. twice as high as traditional solutions. This result very clearly shows that the appropriate use of the new GaN transistors makes it possible to make a technological breakthrough. Considering the voltage and current ratings of these components, this shows that the combination of multiple partial converters is very promising and will make it possible in the future to achieve a significant increase in the compactness of electrical power conversion functions. This sizing study therefore clearly shows the potential of the standardized design of power electronics converters and the search for the best combinations (series, parallel) to meet any specific specifications. Additionally, the developed approach, based on a modeling effort, especially as far as the high-frequency transformer is concerned, and collection of manufacturer data, also makes it possible to limit the implementations and associated tests.

Suggested Citation

  • Pniak, Lucas & Revol, Bertrand & Quéval, Loïc & Ngoua Teu Magambo, Jean-Sylvio & Béthoux, Olivier, 2024. "Pre-sizing of a modular high power density DC/DC converter with GaN components," Mathematics and Computers in Simulation (MATCOM), Elsevier, vol. 224(PA), pages 2-19.
  • Handle: RePEc:eee:matcom:v:224:y:2024:i:pa:p:2-19
    DOI: 10.1016/j.matcom.2023.03.028
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    References listed on IDEAS

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    1. Buticchi, Giampaolo & Costa, Levy Ferreira & Liserre, Marco, 2019. "Multi-port DC/DC converter for the electrical power distribution system of the more electric aircraft," Mathematics and Computers in Simulation (MATCOM), Elsevier, vol. 158(C), pages 387-402.
    2. Marek Turzyński & Serafin Bachman & Marek Jasiński & Szymon Piasecki & Marek Ryłko & Huang-Jen Chiu & Shih-Hao Kuo & Yu-Chen Chang, 2022. "Analytical Estimation of Power Losses in a Dual Active Bridge Converter Controlled with a Single-Phase Shift Switching Scheme," Energies, MDPI, vol. 15(21), pages 1-23, November.
    3. González, Mario & Cárdenas, Víctor & Miranda, Homero & Álvarez-Salas, Ricardo, 2019. "Modular multilevel converter for large-scale photovoltaic generation with reactive power flow and unbalanced active power extraction capabilities," Mathematics and Computers in Simulation (MATCOM), Elsevier, vol. 162(C), pages 135-154.
    4. Ounis, H. & Sareni, B. & Roboam, X. & De Andrade, A., 2016. "Multi-level integrated optimal design for power systems of more electric aircraft," Mathematics and Computers in Simulation (MATCOM), Elsevier, vol. 130(C), pages 223-235.
    5. Boige, F. & Richardeau, F. & Lefebvre, S. & Cousineau, M., 2019. "SiC power MOSFET in short-circuit operation: Electro-thermal macro-modelling combining physical and numerical approaches with circuit-type implementation," Mathematics and Computers in Simulation (MATCOM), Elsevier, vol. 158(C), pages 375-386.
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