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GEO- AND HYDRO-MECHANICAL EVALUATION OF SLOPE FAILURE INDUCED BY TORRENTIAL RAINS IN NORTHERN-KYUSHU AREA, JULY 2009

机译:2009年7月,北九州地区由暴雨引起的边坡破坏的地质和水力评估

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References(7) Cited-By(2) Torrential rainfall in mid-July 2009 triggered numerous geodisasters such as slope failure and debris flow in Chugoku and Northern Kyushu areas of Japan. A number of slope failures and debris flows occurred in Yamaguchi and Fukuoka prefectures resulting in extensive damage to human life and infrastructure. One of the most serious geodisasters included a slope failure followed by debris flow at Sasaguri-machi and Fukuchi-machi, Fukuoka prefecture, Japan. This paper summarizes the results of geotechnical investigations on the geodisaster sites in Fukuoka prefecture. The geotechnical investigation included determining a series of grain size distributions, consistency limits and conducting direct box shear tests for collapsed soils collected at six disaster sites. The generation mechanisms of slope failure followed by debris flow were also investigated by analyzing the precipitation, topography, geology, and strength properties of the collapsed soils. Moreover, slope deformation and stability analyses were coupled with an unsaturated-saturated seepage analysis to investigate the slope failure mechanism. The main findings from the study are summarized as: The physical properties, such as the grain size distribution, the plastic limit and liquid limit of collapsed soils, are summarized and compared with the results of other failure slopes in the literature. The collapsed soil was characterized as being a well grained soil (the uniformity coefficient 50) and highly weathered (the ignition loss 5%), however, with regard to the liquid limit and plastic index, there were no remarkable findings. The original shear strength for collapsed soils with natural water content is relatively large and slope failure doesn't occur because the cohesion in the shear strength is induced by a suction force between the soil particles under unsaturated condition. However, water seepage into the soil induces a drastic decrease in the shear strength, which is mainly caused by a decrease in cohesion (losing suction) resulting from soil saturation. In addition, the drained/undrained condition in the shear process is also sensitive to shear strength. For example, both water seepage and the shear process with constant volume cause an approximate 30% reduction in shear strength for Fukuchi-machi and Sasaguri-machi soil samples. Therefore, the reduction of cohesive strength due to water seepage and the low permeability of the slope are the parameters which trigger geodisaster. Based on the results of slope deformation and a stability analyses which took the change in water pressure and cohesive strength into account, the geodisaster at Fukuchi-machi was simulated, it is reasonable to assume that the shallow failure near the top of slope occurred due to torrential precipitation of about 100 mm per hour which triggered a debris flow.
机译:参考文献(7)引用(2)2009年7月中旬的强降雨引发了许多地质灾害,例如日本的Chugoku和北九州地区的边坡破坏和泥石流。山口县和福冈县发生了许多边坡破坏和泥石流,严重损害了人们的生命和基础设施。最严重的地质灾害之一是在日本福冈县Sasaguri町和Fukuchi町发生了斜坡倒塌和泥石流。本文总结了福冈县地质灾害现场的岩土工程调查结果。岩土工程调查包括确定一系列粒度分布,稠度极限,并对六个灾区收集的坍塌土壤进行直接箱式剪切试验。通过分析塌陷土壤的降水,地形,地质和强度特性,还研究了边坡破坏继而发生泥石流的产生机理。此外,将边坡变形和稳定性分析与非饱和饱和渗流分析相结合,以研究边坡破坏机理。这项研究的主要发现归纳为:总结了塌陷土壤的物理性质,如粒度分布,塑性极限和液态极限,并将其与文献中其他破坏斜坡的结果进行了比较。塌陷的土壤被表征为粒状土壤(均匀系数> 50)和高度风化(着火损失> 5%),但是,在液体极限和塑性指数方面,没有显着发现。具有天然含水量的坍塌土壤的原始剪切强度相对较大,并且不会发生边坡破坏,因为在非饱和条件下,剪切强度的内聚是由土壤颗粒之间的吸力引起的。但是,渗入土壤的水分会引起抗剪强度的急剧下降,这主要是由于土壤饱和引起的内聚力降低(吸力下降)所致。此外,剪切过程中的排水状态对剪切强度也很敏感。例如,渗水和恒定体积的剪切过程都会导致福知町和Sasaguri町土壤样品的剪切强度降低约30%。因此,由于渗水引起的内聚强度降低和斜坡的低渗透性是引发地质灾害的参数。根据边坡变形的结果以及考虑水压和内聚强度变化的稳定性分析,对福知町的地质灾害进行了模拟,可以合理地假设边坡顶部附近的浅层破坏是由于每小时约100毫米的洪流沉淀,引发泥石流。

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