• DocumentCode
    43496
  • Title

    Enabling Wireless Power Transfer in Cellular Networks: Architecture, Modeling and Deployment

  • Author

    Kaibin Huang ; Lau, Vincent K. N.

  • Author_Institution
    Dept. of Electr. & Electron. Eng., Univ. of Hong Kong, Hong Kong, China
  • Volume
    13
  • Issue
    2
  • fYear
    2014
  • fDate
    Feb-14
  • Firstpage
    902
  • Lastpage
    912
  • Abstract
    Microwave power transfer (MPT) delivers energy wirelessly from stations called power beacons (PBs) to mobile devices by microwave radiation. This provides mobiles practically infinite battery lives and eliminates the need of power cords and chargers. To enable MPT for mobile recharging, this paper proposes a new network architecture that overlays an uplink cellular network with randomly deployed PBs for powering mobiles, called a hybrid network. The deployment of the hybrid network under an outage constraint on data links is investigated based on a stochastic-geometry model where single-antenna base stations (BSs) and PBs form independent homogeneous Poisson point processes (PPPs) with densities λb and λp, respectively, and single-antenna mobiles are uniformly distributed in Voronoi cells generated by BSs. In this model, mobiles and PBs fix their transmission power at p and q, respectively; a PB either radiates isotropically, called isotropic MPT, or directs energy towards target mobiles by beamforming, called directed MPT. The model is used to derive the tradeoffs between the network parameters (p, λb, q, λp) under the outage constraint. First, consider the deployment of the cellular network. It is proved that the outage constraint is satisfied so long as the product pλbα/2 is above a given threshold where α is the path-loss exponent. Next, consider the deployment of the hybrid network assuming infinite energy storage at mobiles. It is shown that for isotropic MPT, the product qλpλbα/2 has to be above a given threshold so that PBs are sufficiently dense; for directed MPT, zmpλbα/2 with zm denoting the array gain should exceed a different threshold to ensure short distances between PBs and their target mobiles- Furthermore, similar results are derived for the case of mobiles having small energy storage.
  • Keywords
    cellular radio; computational geometry; microwave power transmission; stochastic processes; PPP; Voronoi cells; beamforming; data links; directed MPT; energy storage; hybrid network; independent homogeneous Poisson point processes; infinite battery lives; isotropic MPT; microwave power transfer; microwave radiation; mobile devices; mobile recharging; outage constraint; power beacons; single-antenna base stations; stochastic-geometry model; uplink cellular network; Ad hoc networks; Base stations; Energy storage; Mobile communication; Mobile computing; Uplink; Wireless communication; Power transmission; adaptive arrays; cellular networks; energy harvesting; mobile communication; stochastic processes;
  • fLanguage
    English
  • Journal_Title
    Wireless Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-1276
  • Type

    jour

  • DOI
    10.1109/TWC.2013.122313.130727
  • Filename
    6697937