TY - JOUR
T1 - Very-Low-Frequency Magnetoelectric Antennas for Portable Underwater Communication
T2 - Theory and Experiment
AU - Du, Yongjun
AU - Xu, Yiwei
AU - Wu, Jingen
AU - Qiao, Jiacheng
AU - Wang, Zhiguang
AU - Hu, Zhongqiang
AU - Jiang, Zhuangde
AU - Liu, Ming
N1 - Publisher Copyright:
© 1963-2012 IEEE.
PY - 2023/3/1
Y1 - 2023/3/1
N2 - Finding an efficient way for underwater communication with a portable antenna at very low frequency (VLF 3-30 kHz) is challenging since the conventional electrical antennas require the size to be larger than 1/10 of the wavelength. Recently, acoustically driven antennas were proposed to realize portable VLF communication in air but lack the demonstration in a lossy environment. Here, we reported the first VLF underwater communication system based on a pair of acoustically actuated magnetoelectric (ME) antennas with small size of 10 cm in length. A theoretical analysis of reflection and radiation performance of the ME antenna was conducted, where the electromechanical resonance (EMR) frequency and effective magnetic dipole moment were estimated, and a near-field coupling model of a pair of ME antennas was further established. The results of theoretical predictions and finite element model (FEM) simulations were then compared with experimental measurements and their differences were discussed. A prototype of underwater communication system based on the ME antenna pair was finally presented, where a binary digital modulation with a bit rate of 100 b/s has been demonstrated, confirming the feasibility of ME antennas for portable underwater communication.
AB - Finding an efficient way for underwater communication with a portable antenna at very low frequency (VLF 3-30 kHz) is challenging since the conventional electrical antennas require the size to be larger than 1/10 of the wavelength. Recently, acoustically driven antennas were proposed to realize portable VLF communication in air but lack the demonstration in a lossy environment. Here, we reported the first VLF underwater communication system based on a pair of acoustically actuated magnetoelectric (ME) antennas with small size of 10 cm in length. A theoretical analysis of reflection and radiation performance of the ME antenna was conducted, where the electromechanical resonance (EMR) frequency and effective magnetic dipole moment were estimated, and a near-field coupling model of a pair of ME antennas was further established. The results of theoretical predictions and finite element model (FEM) simulations were then compared with experimental measurements and their differences were discussed. A prototype of underwater communication system based on the ME antenna pair was finally presented, where a binary digital modulation with a bit rate of 100 b/s has been demonstrated, confirming the feasibility of ME antennas for portable underwater communication.
KW - Acoustic resonator
KW - digital modulation
KW - magnetoelectric (ME) antennas
KW - underwater communication
KW - very low frequency (VLF)
UR - https://www.scopus.com/pages/publications/85147270691
U2 - 10.1109/TAP.2022.3233665
DO - 10.1109/TAP.2022.3233665
M3 - 文章
AN - SCOPUS:85147270691
SN - 0018-926X
VL - 71
SP - 2167
EP - 2181
JO - IEEE Transactions on Antennas and Propagation
JF - IEEE Transactions on Antennas and Propagation
IS - 3
ER -