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首页> 外文期刊>Landslides >Application of multi-dimensional electrical resistivity tomography datasets to investigate a very slow-moving landslide near Ashcroft, British Columbia, Canada
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Application of multi-dimensional electrical resistivity tomography datasets to investigate a very slow-moving landslide near Ashcroft, British Columbia, Canada

机译:多维电阻率断层扫描数据集在加拿大不列颠哥伦比亚省阿什克罗夫特附近研究了一个非常缓慢的滑坡

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摘要

Landslides in the Thompson River valley, British Columbia, Canada, have historically impacted vital transportation infrastructure, the environment and natural resources, cultural heritage features, communities, public safety, and the economy. To better understand and manage geohazard risks in Canada's primary national railway corridor, government agencies, universities, and railway industry partners are focusing research efforts on Ripley Landslide, 7km south of Ashcroft. Electrical resistivity tomography (ERT) datasets collected in November 2013 (on land) and November 2014 (over water) were successfully combined and inverted into a pseudo-3D model that produced significantly deeper resistivity values than previously available in 2D profiles. The lithology, degree of saturation, porosity, presence of dissolved electrolytes, and temperature all influence electrical resistivity of earth materials in the landslide. Continuous (real-time) ERT monitoring began in November 2017 to characterize the long-term hydrological behavior of geological units in the landslide. Seventy-two electrodes were positioned in two arrays across the slide body and connected to a proactive infrastructure monitoring and evaluation (PRIME) system with internet access. PRIME resistivity results corroborate data from other geophysical techniques and hints at an unusual distribution pattern for surface moisture and groundwater in fractured bedrock and overlying clay-rich sediments containing vertical tension cracks and discrete sub-horizontal planar features interpreted as slide surfaces within pre-sheared zones. A greater understanding of the composition and internal structure of slope failures in the valley is gained at the site from terrain analysis and modeling of multi-dimensional geophysical datasets. This insight helps with the interpretation of multi-year monitoring datasets and will guide future efforts to record landslide activity in the valley, reducing stakeholder risks.
机译:加拿大不列颠哥伦比亚省汤普森河谷的山体滑坡在历史上影响了重要的运输基础设施,环境和自然资源,文化遗产,社区,公共安全和经济。为了更好地了解和管理加拿大原国国家铁路走廊,政府机构,大学和铁路行业合作伙伴的地质血清崎岖的风险,专注于Ripley Landslide,7公里的Ashcroft 7公里的研究努力。 2013年11月(土地上)和2014年11月(在水)中收集的电阻率断层扫描(ERT)数据集成功地结合起来,并向伪3D模型倒置成明显更深层次的电阻率值,而不是在2D型材中提供的更深层次的电阻率值。岩性,饱和度,孔隙率,溶解电解质的存在,以及温度所有影响滑坡中地球材料的电阻率。连续(实时)ERT监测于2017年11月开始,以表征山体滑坡地质单位的长期水文行为。将七十二电极定位在滑动体上的两个阵列中,并连接到具有互联网接入的主动基础设施监测和评估(Prime)系统。 Prime电阻率结果在裂缝基岩中的表面水分和地下水中的不同寻常的分布模式中,覆盖含有垂直张力裂缝的覆盖粘土沉积物的不同寻常的分布模式以及覆盖在预剪切区域内的滑动表面的离散子水平平面特征的覆盖物的富含粘土的沉积物。从地形分析和多维地球物理数据集的建模,在网站上获得了对谷的斜坡故障的组成和内部结构的更大了解。这种洞察力有助于解释多年监测数据集,并指导未来努力在谷中录制山体滑坡活动,减少利益攸关方风险。

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