LAPSE:2023.28741
Published Article

LAPSE:2023.28741
Zero Average Surface Controlled Boost-Flyback Converter
April 12, 2023
Abstract
The boost-flyback converter is a DC-DC step-up power converter with a wide range of technological applications. In this paper, we analyze the boost-flyback dynamics when controlled via a modified Zero-Average-Dynamics control technique, hereby named Zero-Average-Surface (ZAS). While using the ZAS strategy, it is possible to calculate the duty cycle at each PWM cycle that guarantees a desired stable period-1 solution, by forcing the system to evolve in such way that a function that is constructed with strategical combination of the states over the PWM period has a zero average. We show, by means of bifurcation diagrams, that the period-1 orbit coexists with a stable period-2 orbit with a saturated duty cycle. While using linear stability analysis, we demonstrate that the period-1 orbit is stable over a wide range of parameters and it loses stability at high gains and low loads via a period doubling bifurcation. Finally, we show that, under the right choice of parameters, the period-1 orbit controller with ZAS strategy satisfactorily rejects a wide range of disturbances.
The boost-flyback converter is a DC-DC step-up power converter with a wide range of technological applications. In this paper, we analyze the boost-flyback dynamics when controlled via a modified Zero-Average-Dynamics control technique, hereby named Zero-Average-Surface (ZAS). While using the ZAS strategy, it is possible to calculate the duty cycle at each PWM cycle that guarantees a desired stable period-1 solution, by forcing the system to evolve in such way that a function that is constructed with strategical combination of the states over the PWM period has a zero average. We show, by means of bifurcation diagrams, that the period-1 orbit coexists with a stable period-2 orbit with a saturated duty cycle. While using linear stability analysis, we demonstrate that the period-1 orbit is stable over a wide range of parameters and it loses stability at high gains and low loads via a period doubling bifurcation. Finally, we show that, under the right choice of parameters, the period-1 orbit controller with ZAS strategy satisfactorily rejects a wide range of disturbances.
Record ID
Keywords
bifurcation diagram, boost-flyback converter, Floquet multipliers, Zero Average Dynamics control, Zero Average Surface control
Subject
Suggested Citation
Muñoz JG, Angulo F, Angulo-Garcia D. Zero Average Surface Controlled Boost-Flyback Converter. (2023). LAPSE:2023.28741
Author Affiliations
Muñoz JG: Instituto Tecnológico Metropolitano, Calle 54A # 30-01, Barrio Boston, Medellín 050013, Colombia [ORCID]
Angulo F: Departamento de Ingeniería Eléctrica, Electrónica y Computación-Bloque Q, Facultad de Ingeniería y Arquitectura, Campus La Nubia, Universidad Nacional de Colombia-Sede Manizales, Manizales 170003, Colombia
Angulo-Garcia D: Grupo de Modelado Computacional-Dinámica y Complejidad de Sistemas, Instituto de Matemáticas Aplicadas, Universidad de Cartagena, Carrera 6 # 36-100, Cartagena de Indias 130001, Colombia [ORCID]
Angulo F: Departamento de Ingeniería Eléctrica, Electrónica y Computación-Bloque Q, Facultad de Ingeniería y Arquitectura, Campus La Nubia, Universidad Nacional de Colombia-Sede Manizales, Manizales 170003, Colombia
Angulo-Garcia D: Grupo de Modelado Computacional-Dinámica y Complejidad de Sistemas, Instituto de Matemáticas Aplicadas, Universidad de Cartagena, Carrera 6 # 36-100, Cartagena de Indias 130001, Colombia [ORCID]
Journal Name
Energies
Volume
14
Issue
1
Article Number
E57
Year
2020
Publication Date
2020-12-24
ISSN
1996-1073
Version Comments
Original Submission
Other Meta
PII: en14010057, Publication Type: Journal Article
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LAPSE:2023.28741
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https://doi.org/10.3390/en14010057
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