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    Wireless injection locking of oscillator circuits

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    Identificadores
    URI: http://hdl.handle.net/10902/11532
    DOI: 10.1109/TMTT.2016.2623622
    ISSN: 0018-9480
    ISSN: 1557-9670
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    Autoría
    Pontón Lobete, María IsabelAutoridad Unican; Suárez Rodríguez, AlmudenaAutoridad Unican
    Fecha
    2016-12
    Derechos
    © 2016 IEEE. Personal use of this material is permitted. Permission from IEEE must be obtained for all other uses, in any current or future media, including reprinting/republishing this material for advertising or promotional purposes, creating new collective works, for resale or redistribution to servers or lists, or reuse of any copyrighted component of this work in other works.
    Publicado en
    IEEE Transactions on Microwave Theory and Techniques, 2016, 64(12), 4646-4659
    Editorial
    Institute of Electrical and Electronics Engineers Inc.
    Enlace a la publicación
    https://doi.org/10.1109/TMTT.2016.2623622
    Palabras clave
    Bifurcation
    Injection locking
    Phase noise
    Stability
    Resumen/Abstract
    An in-depth investigation of the global behavior of wireless injection-locked oscillator circuits is presented. This kind of operation has been proposed for motion-sensing applications, in which each oscillator is also self-injection locked by the signal reflected by the target, with the overall system behaving in an autonomous manner. The analysis is based on a realistic description of the effect of the self-injection and mutual-injection signals, and the oscillator behavior, described with a reduced-order model, extracted from harmonic balance. As will be shown, sinusoidal dependences on the oscillation frequency, associated with the signal propagation, may give rise to turning points in the solution curves, whereas the mutual synchronization of the oscillator circuits inherently gives rise to a coexistence of solutions with different phase shifts. The investigation includes fundamental aspects such as the bifurcation phenomena and phase-noise variation with the distance and antenna gain. The aim is to develop a useful methodology for the efficient analysis and reliable prediction of the behavior of these promising systems. All the results obtained with the new formulation, for easy application, have been carefully validated with costly circuit-level simulations of the whole system. For experimental validation, a prototype operating at 2.45 GHz has been manufactured and measured.
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    UNIVERSIDAD DE CANTABRIA

    Repositorio realizado por la Biblioteca Universitaria utilizando DSpace software
    Contacto | Sugerencias
    Metadatos sujetos a:licencia de Creative Commons Reconocimiento 4.0 España