Seismological Laboratory, Division of Geological and Planetary Sciences, California Institute of Technology, Pasadena, CA, USA.
Google LLC, Mountain View, CA, USA.
Science. 2021 Feb 26;371(6532):931-936. doi: 10.1126/science.abe6648.
Seafloor geophysical instrumentation is challenging to deploy and maintain but critical for studying submarine earthquakes and Earth's interior. Emerging fiber-optic sensing technologies that can leverage submarine telecommunication cables present an opportunity to fill the data gap. We successfully sensed seismic and water waves over a 10,000-kilometer-long submarine cable connecting Los Angeles, California, and Valparaiso, Chile, by monitoring the polarization of regular optical telecommunication channels. We detected multiple moderate-to-large earthquakes along the cable in the 10-millihertz to 5-hertz band. We also recorded pressure signals from ocean swells in the primary microseism band, implying the potential for tsunami sensing. Our method, because it does not require specialized equipment, laser sources, or dedicated fibers, is highly scalable for converting global submarine cables into continuous real-time earthquake and tsunami observatories.
海底地球物理仪器的部署和维护具有挑战性,但对于研究海底地震和地球内部至关重要。新兴的光纤传感技术可以利用海底通信电缆,这为填补数据空白提供了机会。我们通过监测常规光通信信道的偏振成功地感应了连接加利福尼亚州洛杉矶和智利瓦尔帕莱索的长达 10000 公里的海底电缆上的地震波和水波。我们在电缆沿线的 10 毫赫兹至 5 赫兹频段检测到多次中强地震。我们还记录了主微震带中海浪的压力信号,这意味着有海啸感应的潜力。我们的方法不需要专门的设备、激光源或专用光纤,因此非常适合将全球海底电缆转换为连续实时的地震和海啸观测站,具有高度的可扩展性。