A Global Tracking Sensorless Adaptive PI-PBC Design for Output Voltage Regulation in a Boost Converter Feeding a DC Microgrid
Abstract
:1. Introduction
- The application of the PI-PBC design to regulate the output voltage in a boost converter feeding an unknown DC load that represents the possible consumption in a DC microgrid with constant current, resistance, and power loads, which is modeled as a DC load current.
- The integration of two external input estimators to the PI-PBC design, both with exponential convergence, allows one to find the expected values for the DC load current (immersion & invariance (I&I) method) and the voltage input (disturbance–observer (DO) approach), which makes our proposed control approach an adaptive- and sensorless-based design.
2. Mathematical Modeling and Problem Formulation
2.1. Dynamical Modeling and Equilibrium Point
2.2. General Control Problem Definition
- To obtain a general feedback control law that allows for stabilizing of the output voltage to its desired reference , thereby ensuring closed-loop stability and fast convergence.
- To determine the expected value of the load current using an estimator with exponential convergence. The values of the constant resistance, power, and current that compose the loads are unknown, and these are impossible to calculate or estimate since they depend on the DC microgrid connected to the boost converter. The estimator of the load current will make the proposed controller work under a sensorless concept.
- To apply a disturbance–observer estimator to determine the expected value of the voltage source E with exponential convergence that permits one to obtain a sensorless-based controller approach.
3. Passivity-Based Control Theory
3.1. PI-PBC Design
- Due to the skew-symmetric properties of the interconnection matrix, i.e., , then, the component is zero;
- Taking into account that for bilinear systems, and defining the passive output as , then, (12) can be simplified as follows:
3.2. Application to the Boost Converter
4. Sensorless Adaptive Design
4.1. Estimation of the DC Load Current: Adaptive Control Design
4.2. Voltage Input Estimation
5. Analysis and Experimental Results
5.1. Simulation Results
5.2. Effect of the Estimate
5.3. Performance of the Adaptive Proposed Controller
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Component | Description | Type/Value |
---|---|---|
Power MOSFET | IRFB4110 | |
Schottky Power Diode | RURG8060 | |
L | Inductor | Wurth Elektronik 74435584700, 47 H |
C | Multilayer Ceramic Capacitor | TDK C5750X7S2A106M230KB, F |
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Gil-González, W.; Montoya, O.D.; Riffo, S.; Restrepo, C.; Muñoz, J. A Global Tracking Sensorless Adaptive PI-PBC Design for Output Voltage Regulation in a Boost Converter Feeding a DC Microgrid. Energies 2023, 16, 1106. https://doi.org/10.3390/en16031106
Gil-González W, Montoya OD, Riffo S, Restrepo C, Muñoz J. A Global Tracking Sensorless Adaptive PI-PBC Design for Output Voltage Regulation in a Boost Converter Feeding a DC Microgrid. Energies. 2023; 16(3):1106. https://doi.org/10.3390/en16031106
Chicago/Turabian StyleGil-González, Walter, Oscar Danilo Montoya, Sebastián Riffo, Carlos Restrepo, and Javier Muñoz. 2023. "A Global Tracking Sensorless Adaptive PI-PBC Design for Output Voltage Regulation in a Boost Converter Feeding a DC Microgrid" Energies 16, no. 3: 1106. https://doi.org/10.3390/en16031106
APA StyleGil-González, W., Montoya, O. D., Riffo, S., Restrepo, C., & Muñoz, J. (2023). A Global Tracking Sensorless Adaptive PI-PBC Design for Output Voltage Regulation in a Boost Converter Feeding a DC Microgrid. Energies, 16(3), 1106. https://doi.org/10.3390/en16031106