Control-oriented modeling and simulation of injection-locked magnetrons

Autores/as

DOI:

https://doi.org/10.17979/ja-cea.2026.47.13731

Palabras clave:

Modelado, Aplicación de técnicas de análisis y diseño no lineales, Diseño de sistemas de control, Validación de modelos, Estabilidad de sistemas no lineales

Resumen

El objetivo general de esta línea de investigación es lograr un control preciso de fase y amplitud en magnetrones para su aplicación en aceleradores de partículas. Como primer paso fundamental, este trabajo presenta el modelado y la simulación eficiente de magnetrones sincronizados por inyección. El principal desafío radica en que el modelo de circuito equivalente es un sistema oscilatorio "stiff", lo que provoca que los métodos estándar requieran tolerancias extremadamente bajas y largos tiempos de computación. Este artículo evalúa y compara diversos métodos numéricos en Keysight ADS, MATLAB/Simulink y Julia, utilizando Dynamic Time Warping para cuantificar el error sin penalizar derivas puramente temporales. Tras identificar los algoritmos óptimos para una simulación rápida y precisa, se demuestra que este modelo es apto para el diseño de estrategias de control. Como prueba de concepto, se implementa un lazo de control Proporcional-Integral sintonizado mediante SIMC, evidenciando la viabilidad de controlar las dinámicas lentas de fase y amplitud sobre el modelo oscilatorio no lineal.

Biografía del autor/a

  • Jon Vivas-Merino, Euskal Herriko Unibertsitatea (EHU)

    Jon Vivas-Merino received the bachelor’s degree in physics and electronic engineering and the master’s degree in advanced electronic systems from the University of the Basque Country (EHU), Leioa, Spain, in 2023 and 2025 respectively.
    His main research interests include instrumentation, data collection, and real time-control systems.

  • Josu Jugo, Euskal Herriko Unibertsitatea (EHU)

    Josu Jugo received the bachelor’s degree in physics and the Ph.D. degree in control engineering from the University of the Basque Country (UPV/EHU), Leioa, Spain, in 1991 and 1997, respectively. Since 2002, he has been an Associate Professor with the Department of Systems and Automatic Engineering, UPV/EHU, and is a member of the GAUDEE Research Group, specializing in experimental control. He has supervised several Ph.D. theses and Master’s and Bachelor’s theses, mainly related to control engineering. His research has focused on advanced control of mechatronic systems (magnetic bearings, wind turbines, machine tools, advanced actuators), and other complex systems such as RF amplifiers. He has authored numerous articles in international journals and conferences in these fields. In recent years, his work has concentrated on the development of scientific instrumentation and control systems, particularly in the field of particle accelerators.

  • Iñigo Arredondo, Euskal Herriko Unibertsitatea (EHU)

    Iñigo Arredondo received the bachelor’s degree in electronic engineering from the University of the Basque Country (UPV/EHU), Leioa, Spain, in 2003, the degree in physics from the University of Cantabria, Santander, Spain, in 2004, and the Ph.D. degree from UPV/EHU, in 2009.
    He was with the Control Group of the European Spallation Source Consortium Bilbao, Zamudio, Spain, from 2009 to 2014, where he was promoted to the Head of the Group. He then went on to take up a teaching position at the Digipen-Europe Technological Institute, Bilbao, Spain, from 2014 to 2016. He is currently an Associate Professor of Electronics and Automation at the UPV/EHU. His main research interests include design and control of particle accelerators and control of nonlinear systems.

  • Joaquín Portilla, Euskal Herriko Unibertsitatea (EHU)

    Joaqu´ın Portilla received the bachelor’s degree in physics, specializing in electronics from the University of Cantabria, Santander, Spain, in 1990, and the Ph.D. degree from the University of Limoges, Limoges, France, in 1994.
    In 1994, he joined the Department of Communications Engineering, University of Cantabria, working on research and development projects in RF and microwave circuits for radiocommunications. He conducted his Ph.D. research at IRCOM (now XLIM), University of Limoges. He also collaborated in teaching within the Telecommunications Engineering Program. In 1997, he joined the Institute of Physics of Cantabria (IFCA), Santander, to develop radiometers for the ESA’s Planck Project. In 1998, he became part of the
    Department of Electricity and Electronics, University of the Basque Country (UPV/EHU), Leioa, Spain, where he coleads the RF and microwave research group and participates in research and development projects in radiocommunications and scientific instrumentation. He has held various academic management roles and is currently part of the the team driving the Erasmus Mundus Master on Innovative Electronics and Photonics.

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Publicado

01-09-2026

Número

Sección

Modelado, Simulación y Optimización