Realizing Underwater Communication through Magnetic Induction

被引:179
|
作者
Akyildiz, Ian F. [1 ]
Wang, Pu [2 ]
Sun, Zhi [3 ]
机构
[1] Georgia Inst Technol, Atlanta, GA 30332 USA
[2] Wichita State Univ, Wichita, KS 67260 USA
[3] SUNY Buffalo, Buffalo, NY 14260 USA
基金
美国国家科学基金会;
关键词
PROTOCOL; DESIGN;
D O I
10.1109/MCOM.2015.7321970
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
The majority of the work on underwater communication has mainly been based on acoustic communication. Acoustic communication faces many known problems, such as high propagation delays, very low data rates, and highly environment-dependent channel behavior. In this article, to address these shortcomings, magnetic induction is introduced as a possible communication paradigm for underwater applications. Accordingly, all research challenges in this regard are explained. Fundamentally different from the conventional underwater communication paradigm, which relies on EM, acoustic, or optical waves, the underwater MI communications rely on the time varying magnetic field to covey information between the transmitting and receiving parties. MI-based underwater communications exhibit several unique and promising features such as negligible signal propagation delay, predictable and constant channel behavior, sufficiently long communication range with high bandwidth, as well as silent and stealth underwater operations. To fully utilize the promising features of underwater MI-based communications, this article introduces the fundamentals of underwater MI communications, including the MI channel models, MI networking protocols design, and MI-based underwater localization.
引用
收藏
页码:42 / 48
页数:7
相关论文
共 50 条
  • [21] A Mechanical Transmitter for Undersea Magnetic Induction Communication
    Liu, Yu
    Gong, Shuhong
    Liu, Qian
    Hou, Muyu
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2021, 69 (10) : 6391 - 6400
  • [22] Dynamic Magnetic Induction Wireless Communications for Autonomous-Underwater-Vehicle-Assisted Underwater IoT
    Wei, Debing
    Yan, Li
    Huang, Chenpei
    Wang, Jie
    Chen, Jiefu
    Pan, Miao
    Fang, Yuguang
    IEEE INTERNET OF THINGS JOURNAL, 2020, 7 (10) : 9834 - 9845
  • [23] A New Methodology for the Development of Underwater Magnetic Pulse Wireless Communication
    Satya Narayana Murthy V
    Journal of Superconductivity and Novel Magnetism, 2025, 38 (1)
  • [24] Development Support Communication in Practice: Towards Realizing Child Rights Through UNICEF
    Brody, Alan
    ASIA PACIFIC MEDIA EDUCATOR, 2019, 29 (02) : 89 - 105
  • [25] Research on Underwater Communication by current Field through silt layer
    Su, Baoping
    Chen, Fu-an
    2012 INTERNATIONAL CONFERENCE ON FUTURE COMMUNICATION AND COMPUTER TECHNOLOGY (ICFCCT 2012), 2012, : 116 - 120
  • [26] Velocity measurements through magnetic induction
    Carpena, P
    AMERICAN JOURNAL OF PHYSICS, 1997, 65 (02) : 135 - 140
  • [27] Realizing the Vision of Immersive Communication
    Altunbasak, Yucel
    Apostolopoulos, John
    Chou, Philip A.
    Juang, B. H.
    IEEE SIGNAL PROCESSING MAGAZINE, 2011, 28 (01) : 18 - 19
  • [28] UNDERWATER COMMUNICATION
    ISAAK, RD
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1956, 28 (04): : 556 - 556
  • [29] Experimental Assessment of a Magnetic Induction-Based Receiver for Magnetic Communication
    Kim, Jang-Yeol
    Lee, Hyun Joon
    Lee, Jae-Ho
    Oh, Jung Hoon
    Cho, In-Kui
    IEEE ACCESS, 2022, 10 : 110076 - 110087
  • [30] On Reliability of Underwater Magnetic Induction Communications with Tri-Axis Coils
    Guo, Hongzhi
    Sun, Zhi
    Wang, Pu
    ICC 2019 - 2019 IEEE INTERNATIONAL CONFERENCE ON COMMUNICATIONS (ICC), 2019,