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Wave-induced seafloor instabilities in the subaqueous Yellow River Delta-initiation and process of sediment failure

机译:波浪诱导的海底稳定性在黄河阶段 - 启动和沉积物失效过程中

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摘要

Submarine sediment failures or landslides triggered by storm waves in river delta areas pose a significant risk to coastal infrastructure. Due to the limitations of in situ monitoring technology, existing investigations are mostly carried out with geophysical techniques to provide some basic characteristics (e.g. location, size, runout distance, volume, and potential triggers) of existing submarine landslides. However, it is of equal importance to identify the starting criterion and the in situ evolutionary process of the initial stage of seafloor instabilities-sediment failure, which naturally relies heavily on long-term field observations. A field monitoring system was developed for observing sediment failure, which successfully recorded the wave-induced seabed deformation in the subaqueous Yellow River Delta for the first time. Once sediment failure is initiated, the shallow soil undergoes periodic and reciprocating oscillations under alternating action of wave crests and troughs. The evolution of the maximum deformation depth interface moves from shallow to deep, and then migrates upward from deep to shallow layers (the shallow-deep-shallow pattern), which indicates a stability recovery process following the wave-induced seabed failure, and these processes were found to occur multiple times within one storm event. Laboratory wave flume experimental results reproduced and verified the field observations, while also providing pore pressure data which explains the initiation of sediment failure and the deformation process. Finally, a development pattern of the seafloor instabilities in the subaqueous Yellow River Delta is proposed. The in situ observation methods proposed and the knowledge acquired by field monitoring and flume testing could benefit the investigation of costal seafloor instabilities.
机译:河流河潮汐地区风暴波引发的潜艇沉积物故障或滑坡对沿海基础设施产生了重大风险。由于原位监测技术的局限性,现有的调查主要是通过地球物理技术进行的,以提供现有潜水艇滑坡的一些基本特征(例如位置,尺寸,跳动距离,体积和潜在触发器)。然而,识别海底稳定性沉积物失败的初始阶段的起始标准和原位进化过程是同等的重视,这自然依赖于长期野外观察。开发了一个现场监测系统,用于观察沉积物故障,该系统首次成功记录了黄河三角洲的波引起的海底变形。一旦开始沉积物故障,浅土壤在波峰和槽的交替作用下经历周期性和往复振荡。最大变形深度界面的演变从浅到深,然后向上迁移到浅层(浅深浅图案),这表明波浪引起的海底故障和这些过程之后的稳定性恢复过程发现在一个风暴事件中多次发生。实验室波的水管实验结果转载并验证了现场观察,同时还提供了孔隙压力数据,解释了沉积物失效和变形过程的启动。最后,提出了亚基黄河三角洲海底稳定性的发展模式。提出了原位观察方法以及现场监测和水槽测试所获得的知识可以使昂贵海底稳定性的调查受益。

著录项

  • 来源
    《Landslides》 |2020年第8期|共14页
  • 作者单位

    Ocean Univ China Shandong Prov Key Lab Marine Environm &

    Geol Engn Qingdao 266100 Peoples R China;

    MNR Inst Oceanog 1 Qingdao 266061 Shandong Peoples R China;

    Ocean Univ China Shandong Prov Key Lab Marine Environm &

    Geol Engn Qingdao 266100 Peoples R China;

    Powerchina Huadong Engn Corp Ltd Hangzhou 310014 Peoples R China;

    Ocean Univ China Shandong Prov Key Lab Marine Environm &

    Geol Engn Qingdao 266100 Peoples R China;

    Ocean Univ China Shandong Prov Key Lab Marine Environm &

    Geol Engn Qingdao 266100 Peoples R China;

    Ocean Univ China Shandong Prov Key Lab Marine Environm &

    Geol Engn Qingdao 266100 Peoples R China;

    Ocean Univ China Shandong Prov Key Lab Marine Environm &

    Geol Engn Qingdao 266100 Peoples R China;

    MNR Inst Oceanog 1 Qingdao 266061 Shandong Peoples R China;

    China Met Geol Bur Qingdao Geol Explorat Inst Qingdao 266109 Peoples R China;

    SINOPEC Shengli Oilfield Offshore Oil Prod Plant Dongying 257237 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 崩塌;
  • 关键词

    Sediment failure process; Seafloor instability; In situ observation; Seabed deformation; Subaqueous Yellow River Delta;

    机译:沉积物失效过程;海底不稳定性;原位观察;海底变形;亚黄河三角洲;

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