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Direct monitoring of active geohazards: emerging geophysical tools for deep-water assessments

机译:直接监测活性地质曲线:深水评估的新兴地球物理工具

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摘要

Seafloor networks of cables, pipelines, and other infrastructure underpin our daily lives, providing communication links, information, and energy supplies. Despite their global importance, these networks are vulnerable to damage by a number of natural seafloor hazards, including landslides, turbidity currents, fluid flow, and scour. Conventional geophysical techniques, such as high-resolution reflection seismic and side-scan sonar, are commonly employed in geohazard assessments. These conventional tools provide essential information for route planning and design; however, such surveys provide only indirect evidence of past processes and do not observe or measure the geohazard itself. As such, many numerical-based impact models lack field-scale calibration, and much uncertainty exists about the triggers, nature, and frequency of deep-water geohazards. Recent advances in technology now enable a step change in their understanding through direct monitoring. We outline some emerging monitoring tools and how they can quantify key parameters for deep-water geohazard assessment. Repeat seafloor surveys in dynamic areas show that solely relying on evidence from past deposits can lead to an under-representation of the geohazard events. Acoustic Doppler current profiling provides new insights into the structure of turbidity currents, whereas instrumented mobile sensors record the nature of movement at the base of those flows for the first time. Existing and bespoke cabled networks enable high bandwidth, low power, and distributed measurements of parameters such as strain across large areas of seafloor. These techniques provide valuable new measurements that will improve geohazard assessments and should be deployed in a complementary manner alongside conventional geophysical tools.
机译:电缆,管道和其他基础设施的海底网络支撑我们的日常生活,提供通信链接,信息和能源供应。尽管他们全球重要性,但这些网络易受多种天然海底危害造成的伤害,包括山体滑坡,浊度电流,流体流动和冲刷。常规地球物理技术,例如高分辨率反射地震和侧扫声卡,通常用于地质血清评估。这些传统工具提供路线规划和设计的基本信息;然而,这种调查仅提供过去流程的间接证据,并且不观察到或衡量地质曲目。因此,许多基于数值的影响模型缺乏场尺度校准,并且存在触发器,性质和深水地质曲线的频率很大的不确定性。技术的最新进展现在通过直接监控实现他们的理解。我们概述了一些新兴的监控工具以及如何量化深水地质曲集型评估的关键参数。在动态领域重复海底调查表明,仅仅依靠来自过去存款的证据可以导致地质血清事件的欠代表性。声学多普勒电流分析为浊度电流结构提供了新的洞察,而首次将仪表移动传感器记录这些流动底部运动的性质。现有和定制的有线网络能够实现高带宽,低功耗和分布式测量的参数,如大面积的宽大区域。这些技术提供了有价值的新测量,将改善地质神话评估,并应以常规地球物理工具以互补的方式部署。

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