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Article

A 31–300 Hz Frequency Variator Inverter Using Space Vector Pulse Width Modulation Implemented in an 8-Bit Microcontroller

by
Gustavo Cerda-Villafana
1,*,
Adam Birchfield
2 and
Francisco Javier Moreno-Vazquez
1
1
Department of Electronics Engineering, University of Guanajuato, Carretera Salamanca-Valle de Santiago km 3.5+1.8, Comunidad de Palo Blanco, Salamanca 36787, Mexico
2
Department of Electrical and Computer Engineering, Texas A&M University, College Station, TX 77843, USA
*
Author to whom correspondence should be addressed.
Processes 2025, 13(6), 1912; https://doi.org/10.3390/pr13061912
Submission received: 24 March 2025 / Revised: 17 May 2025 / Accepted: 22 May 2025 / Published: 17 June 2025
(This article belongs to the Special Issue Modeling, Simulation and Control in Energy Systems)

Abstract

With the advancement in power electronics technology, variable-frequency drives have been widely adopted for motor operation due to their inherent benefits: control performance, extending equipment life, and energy savings. The most used technique is Sine Pulse Width Modulation, as it solely requires the modification of the reference signal (sine wave). However, Space Vector Pulse Width Modulation offers lower total harmonic distortion. Therefore, this study presents a technique for the control of induction motors operating in open-loop mode, utilizing a two-level voltage source inverter with a frequency range of 31 to 300 Hz. The proposed control system is modified to encompass between 930 and 1848 switching periods, varying the number of switching periods along with the frequency variation. This approach allows the use of a single LCL filter across the whole frequency spectrum. It is adapted for implementation in an 8-bit microcontroller, which has its inherent limitations, yet it achieves performance levels similar to those found in high-level processors like FPGAs and DSPs. The signals generated by the microcontroller are captured by a DAQ card and input into a MATLAB/Simulink model to observe and analyze the performance of the proposed control system.
Keywords: voltage source inverter; Space Vector Pulse Width Modulation; 8-bit microcontroller; frequency variation voltage source inverter; Space Vector Pulse Width Modulation; 8-bit microcontroller; frequency variation

Share and Cite

MDPI and ACS Style

Cerda-Villafana, G.; Birchfield, A.; Moreno-Vazquez, F.J. A 31–300 Hz Frequency Variator Inverter Using Space Vector Pulse Width Modulation Implemented in an 8-Bit Microcontroller. Processes 2025, 13, 1912. https://doi.org/10.3390/pr13061912

AMA Style

Cerda-Villafana G, Birchfield A, Moreno-Vazquez FJ. A 31–300 Hz Frequency Variator Inverter Using Space Vector Pulse Width Modulation Implemented in an 8-Bit Microcontroller. Processes. 2025; 13(6):1912. https://doi.org/10.3390/pr13061912

Chicago/Turabian Style

Cerda-Villafana, Gustavo, Adam Birchfield, and Francisco Javier Moreno-Vazquez. 2025. "A 31–300 Hz Frequency Variator Inverter Using Space Vector Pulse Width Modulation Implemented in an 8-Bit Microcontroller" Processes 13, no. 6: 1912. https://doi.org/10.3390/pr13061912

APA Style

Cerda-Villafana, G., Birchfield, A., & Moreno-Vazquez, F. J. (2025). A 31–300 Hz Frequency Variator Inverter Using Space Vector Pulse Width Modulation Implemented in an 8-Bit Microcontroller. Processes, 13(6), 1912. https://doi.org/10.3390/pr13061912

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