Validation of Sliding Mode and Passivity Control in High-Power Quadratic Buck Converter Through Rapid Prototyping

被引:1
|
作者
Acosta-Rodriguez, Rafael Antonio [1 ]
Martinez-Sarmiento, Fredy Hernan [2 ]
Munoz-Hernandez, German Ardul [3 ]
Mino-Aguilar, Gerardo [3 ]
Portilla-Flores, Edgar Alfredo [4 ]
Nino-Suarez, Paola Andrea [4 ]
Salcedo-Parra, Octavio Jose [5 ]
机构
[1] Univ Distrital Francisco Jose Caldas, ARMOS Grp Colciencias, Smart Internet Res Grp, Bogota 111611, Colombia
[2] Univ Distrital Francisco Jose Caldas, ARMOS Grp Colciencias, Bogota 111611, Colombia
[3] Meritorious Autonomous Univ Puebla BUAP, Fac Elect Sci, Puebla 72592, Mexico
[4] Inst Politecn Nacl IPN, Ctr Innovat & Technol Dev Comp CIDETEC, Tlaxcala 07738, Mexico
[5] Univ Distrital Francisco Jose Caldas, Smart Internet Res Grp Colciencias, Bogota 111611, Colombia
关键词
dSPACE; hardware in the loop (HIL); model in the loop (MIL); passivity control; performance indices; quadratic buck converter (QBC); rapid control prototyping (RCP); real-time (RT); sliding mode control; software in the loop (SIL); FUZZY-LOGIC;
D O I
10.1109/ACCESS.2023.3340313
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
This document introduces a rapid control prototyping (RCP) approach applied to the industrial sector using a non-linear Quadratic Buck Converter (QBC) DC-DC. The goal is to reduce manufacturing costs for materials and electronic devices while enhancing the power quality in the system's response. An experimental setup is utilized to create a functional model, converting 380 VDC to 48 VDC at a power level of 500 W. dSPACE CP1103 is employed to implement Model in the Loop (MIL), Software in the Loop (SIL), and Hardware in the Loop (HIL) simulations. Modern control techniques, including sliding mode control (SMC) and passivity-based control (PBC), are employed to devise a robust control scheme capable of maintaining stability in real-time (RT) and resisting disturbances. The document concludes with a performance analysis, PI, Cp, CpK, Z-score, and ITAE considering response time, signal accuracy, system stability, and resource utilization efficiency.
引用
收藏
页码:8668 / 8699
页数:32
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