Signal and System Design for Wireless Power Transfer: Prototype, Experiment and Validation

被引:47
|
作者
Kim, Junghoon [1 ]
Clerckx, Bruno [1 ]
Mitcheson, Paul D. [1 ]
机构
[1] Imperial Coll London, Dept Elect & Elect Engn, London SW7 2AZ, England
基金
英国工程与自然科学研究理事会;
关键词
Array signal processing; Modulation; Signal design; Wireless communication; Prototypes; Rectennas; Wireless power transfer; Energy harvesting; wireless power transfer (WPT); waveform; beamforming; WPT prototype; nonlinearity; WAVE-FORM DESIGN; ENERGY;
D O I
10.1109/TWC.2020.3011606
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
A new line of research on communications and signals design for Wireless Power Transfer (WPT) has recently emerged in the communication literature. Promising signal strategies to maximize the power transfer efficiency of WPT rely on (energy) beamforming, waveform, modulation and transmit diversity, and a combination thereof. To a great extent, the study of those strategies has so far been limited to theoretical performance analysis. In this paper, we study the real over-the-air performance of all the aforementioned signal strategies for WPT. To that end, we have designed, prototyped and experimented an innovative radiative WPT architecture based on Software-Defined Radio (SDR) that can operate in open-loop and closed-loop (with channel acquisition at the transmitter) modes. The prototype consists of three important blocks, namely the channel estimator, the signal generator, and the energy harvester. The experiments have been conducted in a variety of deployments, including frequency flat and frequency selective channels, under static and mobility conditions. Experiments highlight that a channel-adaptive WPT architecture based on joint beamforming and waveform design offers significant performance improvements in harvested DC power over conventional single-antenna/multi-antenna continuous wave systems. The experimental results fully validate the observations predicted from the theoretical signal designs and confirm the crucial and beneficial role played by the energy harvester nonlinearity.
引用
收藏
页码:7453 / 7469
页数:17
相关论文
共 50 条
  • [41] LOOSELY COUPLED WIRELESS POWER TRANSFER FOR MULTILEVEL SYSTEM DESIGN
    Pynadath, Anu George
    Prakash, R.
    [J]. 2014 INTERNATIONAL CONFERENCE ON ELECTRONICS AND COMMUNICATION SYSTEMS (ICECS), 2014,
  • [42] Multiple Antennas Design for the RF Wireless Power Transfer System
    An, Changyoung
    Ryu, Heung-Gyoon
    [J]. 2020 IEEE WIRELESS POWER TRANSFER CONFERENCE (WPTC), 2020, : 91 - 93
  • [43] Design and Study of Data and Power Wireless Transfer System for UAV
    Li, Xiaokun
    Lu, Junwei
    Water, Wayne
    [J]. PROCEEDINGS OF THE 2019 14TH IEEE CONFERENCE ON INDUSTRIAL ELECTRONICS AND APPLICATIONS (ICIEA 2019), 2019, : 2043 - 2048
  • [44] Design and optimisation of a wireless power transfer system for satellite application
    Wang, Feng
    Feng, Tianyu
    Chen, Xueqin
    [J]. IET POWER ELECTRONICS, 2019, 12 (10) : 2586 - 2598
  • [45] Optimal Design for Wireless Power Transfer System with Relay Resonators
    陈新
    黄守道
    [J]. Journal of Donghua University(English Edition), 2018, 35 (04) : 302 - 308
  • [46] Design of a wireless power transfer system for assisted living applications
    Abdullahi, Qassim S.
    Joshi, Rahil
    Podilchak, Symon K.
    Khan, Sadeque R.
    Chen, Meixuan
    Rooney, Jean
    Rooney, John
    Sun, Danmei
    Desmulliez, Marc P. Y.
    Georgiadis, Apostolos
    Anagnostou, Dimitris
    [J]. WIRELESS POWER TRANSFER, 2019, 6 (01): : 41 - 56
  • [47] SIMULTANEOUS WIRELESS INFORMATION AND POWER TRANSFER IN IOT-BASED SCENARIOS: ARCHITECTURES, CHALLENGES, AND PROTOTYPE VALIDATION
    Ma, Ruoyan
    Tang, Jie
    Zhang, Xiu Yin
    Feng, Wanmei
    So, Daniel Ka Chun
    Chae, Chan-Byoung
    Wong, Kai-Kit
    Chambers, Jonathon A.
    [J]. IEEE WIRELESS COMMUNICATIONS, 2024, : 272 - 278
  • [48] Rectenna Design and Signal Optimization for Electromagnetic Energy Harvesting and Wireless Power Transfer
    Georgiadis, Apostolos
    Collado, Ana
    Niotaki, Kyriaki
    [J]. IEICE TRANSACTIONS ON ELECTRONICS, 2015, E98C (07): : 608 - 612
  • [49] Validation of a Reflected-Impedance Design Method for Wireless Power Transfer Applications
    Beams, David M.
    Annam, Sravan G.
    [J]. 2012 IEEE 55TH INTERNATIONAL MIDWEST SYMPOSIUM ON CIRCUITS AND SYSTEMS (MWSCAS), 2012, : 758 - 761
  • [50] Study on a design guideline for determining transfer frequency in Wireless Power Transfer system
    Suzuki, Takahiro
    Aiso, Kohei
    Kondo, Keiichiro
    Aoyama, Yasuaki
    [J]. 2021 IEEE 12TH ENERGY CONVERSION CONGRESS AND EXPOSITION - ASIA (ECCE ASIA), 2021, : 805 - 810