Institute of Industrial Science, University of Tokyo, Tokyo, Japan.
Space Entertainment Laboratory, Co. Ltd., Minamisoma, Japan.
Sci Rep. 2023 Mar 13;13(1):4105. doi: 10.1038/s41598-023-31214-6.
The Global Navigation Satellite System-Acoustic ranging combination technique (GNSS-A) is the only geodetic observation method that can precisely detect absolute horizontal and vertical seafloor crustal deformations at the centimetre scale. GNSS-A has detected many geophysical phenomena and is expected to make great contributions to earthquake disaster prevention science and geodesy. However, current observation methods that use vessels and buoys suffer from high cost or poor real-time performance, which leads to low observation frequency and delays in obtaining and transmitting disaster prevention information. To overcome these problems, a new sea surface platform is needed. Here, we present an unmanned aerial vehicle (UAV) system developed for GNSS-A surveys capable of landing on the sea surface. Submetre-level seafloor positioning is achieved based on real-time single-frequency GNSS data acquired over an actual site. UAV-based GNSS-A allows high-frequency, near real-time deployment, and low-cost seafloor geodetic observations. This system could be deployed to acquire high-frequency observations with centimetre-scale accuracies when using dual-frequency GNSS.
全球导航卫星系统-声学测距组合技术(GNSS-A)是唯一能够以厘米级精度精确探测绝对水平和垂直海底地壳变形的大地测量观测方法。GNSS-A 已经探测到许多地球物理现象,有望为地震灾害预防科学和大地测量学做出巨大贡献。然而,目前使用船只和浮标进行观测的方法存在成本高或实时性差的问题,导致观测频率低,获取和传输防灾信息延迟。为了克服这些问题,需要一种新的海面平台。在这里,我们提出了一种用于 GNSS-A 测量的无人机(UAV)系统,该系统能够降落在海面上。基于在实际场地获取的实时单频 GNSS 数据,实现了亚米级海底定位。基于无人机的 GNSS-A 允许高频、近实时的部署和低成本的海底大地测量观测。该系统可以在使用双频 GNSS 时部署以获取具有厘米级精度的高频观测。