• DocumentCode
    2478527
  • Title

    VHDL-AMS modeling of adaptive electrostatic harvester of vibration energy with dual-output DC-DC converter

  • Author

    Dudka, Andrii ; Galayko, Dimitri ; Basset, Philippe

  • Author_Institution
    LIP6 Lab., Paris-VI Univ., Paris, France
  • fYear
    2009
  • fDate
    17-18 Sept. 2009
  • Firstpage
    13
  • Lastpage
    18
  • Abstract
    This paper presents a functional design and modeling of smart conditioning circuit of a vibrational energy harvester based on electrostatic transducer. Two original features are added to the basic configuration previously published (whose model we presented on BMAS2007 conference). Firstly, we developed an auto-calibration block which allows the new harvester to adapt dynamically to the varying environment parameters (e.g., amplitude of external vibrations). Secondly, we propose an original schematic configuration based on dual output DC-DC converter, which implements a smart power interface with the load, allowing the harvester to manage a possibly variable load and adapt to different situations (e.g. unsufficient generated power level, load too large, etc.). The scheme of the power interface re-uses the coil existing in the basic harvester configuration. The new harvester architecture contains ldquosoftwarerdquo blocks which can be programmed to implement different power-management and auto-calibration strategies. We describe one possible algorithm of the whole architecture operation, and present the corresponding modeling results. The system is implemented as a mixed VHDL-AMS/ELDO model.
  • Keywords
    DC-DC power convertors; calibration; capacitive sensors; electrostatic devices; energy harvesting; hardware description languages; microsensors; power integrated circuits; transducers; MEMS; VHDL-AMS modeling; adaptive electrostatic harvester; autocalibration block; capacitive transducer; dual-output DC-DC converter; electrostatic transducer; mixed VHDL-AMS-ELDO model; power management; smart conditioning circuit; smart power interface; software blocks; vibration energy harvester; Analog circuits; DC-DC power converters; Discrete event simulation; Electrostatics; Frequency synthesizers; Hardware design languages; Phase locked loops; Phase noise; Radio frequency; Semiconductor device modeling; Energy harvesting; MEMS; VHDL-AMS; adaptive switch; dc-dc convertor; power management;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Behavioral Modeling and Simulation Workshop, 2009. BMAS 2009. IEEE
  • Conference_Location
    San Jose, CA
  • Print_ISBN
    978-1-4244-5358-0
  • Type

    conf

  • DOI
    10.1109/BMAS.2009.5338894
  • Filename
    5338894