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A Low Voltage Dynamic Synchronous DC-DC Buck Converter

Received: 21 May 2017    Accepted: 12 June 2017    Published: 18 July 2017
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Abstract

This paper presents the design and modeling of synchronous DC-DC buck converter for device applications low consumption using Matlab/Simulink. In this work, the steady-state and average-value models for buck converter are analysed and it offers the modeled equations and simulation techniques of standard buck converter topology including variable loads. The goals of the designer are stabilized output voltage from a given input DC voltage using a Proportional Integral Derivative (PID) controller.

Published in International Journal of Sensors and Sensor Networks (Volume 5, Issue 2)
DOI 10.11648/j.ijssn.20170502.11
Page(s) 22-26
Creative Commons

This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2024. Published by Science Publishing Group

Keywords

Proportional Integral Derivative, DC-DC, Buck Converter, Matlab/Simulink, Controlled Converter

References
[1] Vahid Yousefzadeh, Dragan Maksimovic “Sensorless Optimization of Dead Times in DC–DC Converters With Synchronous Rectifiers”, IEEE TRANSACTIONS ON POWER ELECTRONICS, VOL. 21, NO. 4, JULY 2006.
[2] M. Ordonez, M. T. Iqbal, and J. E. Quaicoe, “Selection of a curved switching surface for buck converters” IEEE Trans. Power Electron., vol. 21, no. 4, pp. 1148–1153, Jul. 2006.
[3] P. T. Krein, “Feasibility of geometric digital controls and augmentation for ultrafast dc–dc converter response” in Proc. IEEE COMPEL, 2006, pp. 48–56.
[4] Yeong-Tsair LinMei-Chu JenWen-Yaw Chung “A monolithic buck DC–DC converter with on-chip PWM circuit”, Aug 2007, Microelectronics Journal.
[5] Vahid Yousefzadeh, Amir Babazadeh, Bhaskar Ramachandran, Eduard Alarcón, Pao and Dragan Maksimovic “Time-Optimal Digital Control for Synchronous Buck DC–DC Converters”, IEEE TRANSACTIONS ON POWER ELECTRONICS, VOL. 23, NO. 4, JULY 2008.
[6] P. Gupta and A. Patra, “Super-stable energy based switching control scheme for dc–dc buck converter circuits,” in Proc. IEEE ISCAS, 2005, vol. 4, pp. 3063–3066.
[7] K. K. S. Leung and H. S. H. Chung, “Derivation of a second-order switching surface in the boundary control of buck converters” IEEE Power Electron. Lett., vol. 20, no. 2, pp. 63–67, Jun. 2004.
[8] C. Laorpacharapan and L. Y. Pao, “Shaped time-optimal feedback control for disk-drive systems with back-electromotive force,” IEEE Trans. Magn., vol. 40, no. 1, pp. 85–96, Jan. 2004.
[9] K. Subramanian, V. K. Sarath Kumar, E. M. Saravanan, E. Dinesh “Improved One Cycle Control of DC-DC Buck Converter”, 2014 IEEE International Conference on Advanced Communication Control and Computing Technologies (ICACCCT).
[10] M. B. Sigalo, L. T. Osikibo “Design and Simulation of Dc-Dc Voltage Converters Using Matlab/Simulink” American Journal of Engineering Research (AJER) e-ISSN: 2320-0847 p-ISSN: 2320-0936Volume-5, Issue-2, pp-229-236, 2016.
[11] R. Ingudam, R. Nayak “Modelling and Performance Analysis of DC-DC Converters for PV Grid Connected System” International Journal of Science, Engineering and Technology Research (IJSETR), Volume 4, Issue 5, May 2015.
[12] Hanifi Guldemir “Study of Sliding Mode Control of Dc-Dc Buck Converter” Energy and Power Engineering, 2011, 3, 401-406 doi: 10.4236/epe.2011.34051 Published Online September 2011.
[13] Zhuo Bi, Wenbin Xia, “Modeling and Simulation of Dual-Mode DC/DC Buck Converter”, Second IEEE InternationalConference on ComputerModeling and Simulation, (ICCMS), pp. 371 -375, Jan 2010.
[14] K. S. Leung and H. S. H. Chung, “A comparative study of the boundary control of buck converters using first- and second-order switching surfaces -Part I: Continuous conduction mode,” in Proc. IEEE PESC, 2005, pp. 2133–2139.
[15] Application Report Understanding buck power stages in switch mode power supplies TI literature number slva057.
[16] R. W. Erickson, “Fundamentals of Power Electronics”, New York: Chapman and Hall, 1997.
[17] J. Mahdavi, A. Emadi, H. A. Toliyat, “Application of State Space Averaging Method to Sliding Mode Control of PWM DC/DC Converters”, IEEE Industry Applications Society October 1997.
[18] Vitor Femao Pires, Jose Fernando A. Silva, “Teaching Nonlinear Modeling, Simulation, and Control of Electronic Power Converters Using MATLAB/SIMULINK” IEEE Transactions on Education, vol. 45, no. 3, August 2002.
[19] Juing-Huei Su, Jiann-Jong Chen, Dong-Shiuh Wu, “Learning Feedback Controller Design of Switching Converters Via MATLAB/SIMULINK”, IEEE Transactions on Education, vol. 45, November 2002.
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[21] Aidan O‘Dwyer, “Handbook of PI and PID Controller Tuning Rules”, 3rd Edition, Imperial College Press 2009.
[22] Karl Johan Astrom and Tore Hagglund “PID controllers theory design and tuning” 2nd Edition, Instrument Society of America, 1995.
[23] From Wikipedia, the free encyclopedia, “PID_controller,”taken from internet at 20 September 2010.
Cite This Article
  • APA Style

    Benlafkih Abdessamad, Chafik Elidrissi Mohamed. (2017). A Low Voltage Dynamic Synchronous DC-DC Buck Converter. International Journal of Sensors and Sensor Networks, 5(2), 22-26. https://doi.org/10.11648/j.ijssn.20170502.11

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    ACS Style

    Benlafkih Abdessamad; Chafik Elidrissi Mohamed. A Low Voltage Dynamic Synchronous DC-DC Buck Converter. Int. J. Sens. Sens. Netw. 2017, 5(2), 22-26. doi: 10.11648/j.ijssn.20170502.11

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    AMA Style

    Benlafkih Abdessamad, Chafik Elidrissi Mohamed. A Low Voltage Dynamic Synchronous DC-DC Buck Converter. Int J Sens Sens Netw. 2017;5(2):22-26. doi: 10.11648/j.ijssn.20170502.11

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  • @article{10.11648/j.ijssn.20170502.11,
      author = {Benlafkih Abdessamad and Chafik Elidrissi Mohamed},
      title = {A Low Voltage Dynamic Synchronous DC-DC Buck Converter},
      journal = {International Journal of Sensors and Sensor Networks},
      volume = {5},
      number = {2},
      pages = {22-26},
      doi = {10.11648/j.ijssn.20170502.11},
      url = {https://doi.org/10.11648/j.ijssn.20170502.11},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ijssn.20170502.11},
      abstract = {This paper presents the design and modeling of synchronous DC-DC buck converter for device applications low consumption using Matlab/Simulink. In this work, the steady-state and average-value models for buck converter are analysed and it offers the modeled equations and simulation techniques of standard buck converter topology including variable loads. The goals of the designer are stabilized output voltage from a given input DC voltage using a Proportional Integral Derivative (PID) controller.},
     year = {2017}
    }
    

    Copy | Download

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    T1  - A Low Voltage Dynamic Synchronous DC-DC Buck Converter
    AU  - Benlafkih Abdessamad
    AU  - Chafik Elidrissi Mohamed
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    T2  - International Journal of Sensors and Sensor Networks
    JF  - International Journal of Sensors and Sensor Networks
    JO  - International Journal of Sensors and Sensor Networks
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    PB  - Science Publishing Group
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    UR  - https://doi.org/10.11648/j.ijssn.20170502.11
    AB  - This paper presents the design and modeling of synchronous DC-DC buck converter for device applications low consumption using Matlab/Simulink. In this work, the steady-state and average-value models for buck converter are analysed and it offers the modeled equations and simulation techniques of standard buck converter topology including variable loads. The goals of the designer are stabilized output voltage from a given input DC voltage using a Proportional Integral Derivative (PID) controller.
    VL  - 5
    IS  - 2
    ER  - 

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Author Information
  • Laboratory of Engineering Energy and Materials, Faculty of Sciences University Ibn Tofail, Kenitra, Morocco

  • Laboratory of Engineering Energy and Materials, Faculty of Sciences University Ibn Tofail, Kenitra, Morocco

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