Quantitative feedback-feedforward control for model matching and disturbance rejection

  1. Elso, J. 1
  2. Gil-Martínez, M. 3
  3. García-Sanz, M. 2
  1. 1 Universidad Pública de Navarra
    info

    Universidad Pública de Navarra

    Pamplona, España

    ROR https://ror.org/02z0cah89

  2. 2 Case Western Reserve University
    info

    Case Western Reserve University

    Cleveland, Estados Unidos

    ROR https://ror.org/051fd9666

  3. 3 Universidad de La Rioja
    info

    Universidad de La Rioja

    Logroño, España

    ROR https://ror.org/0553yr311

Revista:
IET Control Theory and Applications

ISSN: 1751-8644

Año de publicación: 2013

Volumen: 7

Número: 6

Páginas: 894-900

Tipo: Artículo

DOI: 10.1049/IET-CTA.2012.0596 SCOPUS: 2-s2.0-84880362688 WoS: WOS:000321715300012 GOOGLE SCHOLAR

Otras publicaciones en: IET Control Theory and Applications

Resumen

This study addresses two major single-input single-output control problems involving both feedback and feedforward actions: (i) the model matching in reference tracking and (ii) the rejection of measurable disturbances. Its aim is to overcome the limitations of inversion-based feedforward design methods when system uncertainty is considered, and to find a control engineering solution based on the quantitative feedback theory (QFT). The proposed methodology leads to minimum cost of feedback by limiting the feedback action to the strictly necessary amount that enables the use of a feedforward controller. Although the model matching problem had drawn some attention of the QFT community in the last few years, the measurable disturbance rejection problem remained unaddressed. This study provides a novel solution for both of them in which the need for feedback is linked to the existence of a common feedforward solution for all plants within the model uncertainty. This work also deals with the generation of the corresponding quadratic inequalities and new QFT bounds for the mentioned feedback demand. A practical and well-known benchmark example illustrates the main details and advantages of the new methodology. © 2013 The Institution of Engineering and Technology.