发射机
声学
甚低频
电气工程
磁场
带宽(计算)
非线性系统
电子工程
材料科学
计算机科学
物理
工程类
电信
频道(广播)
量子力学
作者
Zhaoqiang Chu,Zhineng Mao,Kaixin Song,Shizhan Jiang,Shugang Min,Dan Wei,Chenyuan Yu,Meiyu Wu,Yinghui Ren,Zhichao Lu,Jie Jiao,Tianxiang Nan,Shuxiang Dong
出处
期刊:Research
[AAAS00]
日期:2023-01-01
卷期号:6
被引量:9
标识
DOI:10.34133/research.0208
摘要
Acoustically actuated magnetoelectric (ME) antenna based on the efficient oscillation of magnetic dipoles has recently been considered as a promising solution for portable very-low-frequency communications. However, the severe nonlinear dynamic behavior in the case of strong-field excitation results in insufficient radiation capability and poor communication performance for a conventional ME antenna. In this work, we propose to suppress the nonlinearity of an ME antenna by neutralizing the spring-hardening effect in amorphous Metglas and the spring-softening effect in piezoelectric ceramics through an ME multilayered transmitter (ME-MLTx) design. With a driving voltage of 50 Vpp at the resonance frequency of 21.2 kHz, a magnetic flux density as high as 108 fT at a distance of 100 m is produced from a single ME-MLTx. In addition, ME-MLTx performs a decreased mechanical quality factor (Qm) less than 40.65, and, thus, a broadened bandwidth of 500 Hz is generated. Finally, a communication link transmitting binary American Standard Code for Information Interchange-coded message is built, which allows for an error-free communication with a distance of 18 m and a data rate of 300 bit/s in the presence of heavy environment noise. The communication distance can be further estimated over 100 m when using a femtotesla-class-inductive magnetic field receiver. The obtained results are believed to bring ME antennas one step closer to being applicable in very-low-frequency communications.
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