• DocumentCode
    136036
  • Title

    MISO configuration efficiency in inductive power transmission for supplying wireless sensors

  • Author

    Kallel, Bilel ; Keutel, T. ; Kanoun, Olfa

  • Author_Institution
    Meas. & Sensor Technol, Tech. Univ. Chemnitz, Chemnitz, Germany
  • fYear
    2014
  • fDate
    11-14 Feb. 2014
  • Firstpage
    1
  • Lastpage
    5
  • Abstract
    Inductive power transmission depends on many parameters such as the distance and the alignment between the coils, the working frequency, the current excitation, the geometry and the property of the coils, etc. Exchanging power distance between coils in wireless power transmission using inductive link is generally low, it is shorter than the diameter of the sending coils. Consequently, increasing coil to coil distance causes a harm decrease of the transmitted power and the efficiency of the system. A major technical challenge affecting the use of this kind of power transmission is to find a way of sending energy to the target devices in an efficient and reliable manner taking into account this influencing effect. In this paper, we explored potential solutions to overcome this challenge by adopting a Multiple Input Single Output (MISO) coil system able to decrease the magnetic flux leakage and orientate the magnetic field to the receiving coil by powering the neighbor coils of the active ones in opposite direction. This technique can be implemented in many industrial applications such as supplying wireless sensors installed into a conveyor. Same parameters according the model of the coupled coils on SISO and MISO configurations are developed and simulations by finite element method are done. The investigation shows that the MISO orientated system is capable to transfer 42 mW over a 50 mm distance and reaching 30% efficiency.
  • Keywords
    coils; conveyors; finite element analysis; inductive power transmission; magnetic flux; MISO configuration; SISO configurations; coil distance; conveyor; coupled coils; efficiency 30 percent; finite element method; inductive link; inductive power transmission; magnetic flux leakage; multiple input single output coil; power 42 mW; transmitted power; wireless sensors; Charge coupled devices; Coils; Hafnium; Heat-assisted magnetic recording; Lasers; Monitoring; Wireless communication; Multi-coil system; inductive link; power transmission distance; wireless power transmission; wireless sensors;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Multi-Conference on Systems, Signals & Devices (SSD), 2014 11th International
  • Conference_Location
    Barcelona
  • Type

    conf

  • DOI
    10.1109/SSD.2014.6808915
  • Filename
    6808915