Passivity-Based Control PI for the Versatile Buck-Boost (VBB) Converter

Voltage and current requirements imposed by direct current loads are highly demanding in modern applications such as microgrids and electric vehicles. High-performance converters and controllers are required for these applications. The versatile buck-boost (VBB) converter has shown comparative advan...

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Bibliographic Details
Published in:IEEE Access
Main Authors: Catalina Gonzalez-Castano, Antonio Veliz, Duberney Murillo-Yarce, Walter Gil-Gonzalez, Carlos Restrepo, Alejandro Garces
Format: Article
Language:English
Published: IEEE 2024-01-01
Subjects:
Online Access:https://ieeexplore.ieee.org/document/10630500/
Description
Summary:Voltage and current requirements imposed by direct current loads are highly demanding in modern applications such as microgrids and electric vehicles. High-performance converters and controllers are required for these applications. The versatile buck-boost (VBB) converter has shown comparative advantages such as non-inverting output, wide bandwidth, and smooth transition between operation modes and current control loops. The control law can enhance these intrinsic advantages. In this work, a passivity-based current controller is designed and implemented for this converter. The control is based on the system&#x2019;s dissipative characteristic to match the desired operating point&#x2019;s power function. The proposed controller maintains the simplicity and robustness of a PI control while guaranteeing high performance and dynamic stability. This control does not depend on the converter&#x2019;s component values. Theoretical analyses are complemented with numerical simulations and experimental results on a purpose-built prototype. The proposed control shows stable and high performance in both buck and boost modes, demonstrating its effectiveness and reliability in real-world conditions, presenting for the buck and boost modes equal settling times in transitions (about to <inline-formula> <tex-math notation="LaTeX">$100~\mu $ </tex-math></inline-formula>s). These benefits make it particularly suitable for demanding applications requiring robust and efficient power conversion.
ISSN:2169-3536