低频信号在海洋环境中的传播理论,模拟和实验

C. Johnson, C. L. Wagner, Robert T. Rebich, Jeffery L. Young, D. Butherus
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引用次数: 2

摘要

与海洋环境相关的30 Hz至3000 Hz范围内的极低频、超低频和超低频信号(ELF、SLF和ULF)的激发和传播对于处理深水通信或由发电设备和线路引起的地下排放的应用特别感兴趣。由于在海水中波长相对较长,大约几百米左右,而且信号源的功率很高,因此在距离信号源几公里的地方就可以探测到这些信号。在当今时代,复杂的电磁建模工具已经开发出用于高频应用,问题是这些工具是否可以应用于ELF, SLF和ULF应用(在随后的讨论中简称为ELF)。特别是,我们希望确定有限差分时域(FDTD)方法,商业代码(例如HFSS和Maxwell)以及使用Sommerfeld和准静电方法分层媒体建模应用于ELF传播问题的有效性和鲁棒性。每一种方法都有其优点和缺点,如下面的章节所述。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Propagation of low frequency signals in oceanic environments; theory, simulation and experimentation
The excitation and propagation of extremely, super and ultra low frequency signals (ELF, SLF and ULF) in the range of 30 Hz to 3,000 Hz associated with ocean environments are of particular interest for applications dealing with deep-water communications or sub-surface emissions caused by power generation devices and lines. Due to the relatively long wave-lengths on the order of hundreds of meters or so in saltwater and the high-power nature of the sources, it is possible to detect these signals several kilometers from the source. In the current age in which sophisticated electromagnetic modeling tools have been developed for high frequency applications, the question has been asked whether these same tools can be applied to ELF, SLF and ULF applications (referred to as just ELF in subsequent discussions). In particular, we wish to ascertain the usefulness and robustness of the finite-difference, time-domain (FDTD) method, commercial codes (e.g. HFSS and Maxwell), and layered media modeling using Sommerfeld and quasi-electrostatic methods as applied to the ELF propagation problem. Each of these approaches has its strengths and weaknesses, as described in the ensuing sections.
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