为研究黏土夹层对共振法处理可液化砂土地基效果的影响,按比例制备十字翼振杆并开展相关模型试验.根据加固前后轻型动力触探击数 N 10 、土颗粒峰值振动加速度 a 和砂土相对密度 D r 的变化,分析了黏土夹层对土体强度、能量传递规律及...为研究黏土夹层对共振法处理可液化砂土地基效果的影响,按比例制备十字翼振杆并开展相关模型试验.根据加固前后轻型动力触探击数 N 10 、土颗粒峰值振动加速度 a 和砂土相对密度 D r 的变化,分析了黏土夹层对土体强度、能量传递规律及密实程度的影响.结果表明, N 10 和 a 值随着测点与振杆径向距离的增加而减小.受黏土夹层影响,加固前后土体强度增长幅度降低64%~127%, a 值也相应减少,且振动有效影响半径由0.4 m减少为0.3 m,砂土相对密实度增长幅度下降4.2%~9.7%.现场标贯试验及地表峰值振速监测结果进一步验证了模型试验的可靠性.地基中黏土夹层可使振点处的排水通道受阻,降低土体排水固结及能量传递效率,减弱了加固效果.展开更多
In Brazil and various regions globally, the initiation of landslides is frequently associated with rainfall;yet the spatial arrangement of geological structures and stratification considerably influences landslide occ...In Brazil and various regions globally, the initiation of landslides is frequently associated with rainfall;yet the spatial arrangement of geological structures and stratification considerably influences landslide occurrences. The multifaceted nature of these influences makes the surveillance of mass movements a highly intricate task, requiring an understanding of numerous interdependent variables. Recent years have seen an emergence in scholarly research aimed at integrating geophysical and geotechnical methodologies. The conjoint examination of geophysical and geotechnical data offers an enhanced perspective into subsurface structures. Within this work, a methodology is proposed for the synchronous analysis of electrical resistivity geophysical data and geotechnical data, specifically those extracted from the Light Dynamic Penetrometer (DPL) and Standard Penetration Test (SPT). This study involved a linear fitting process to correlate resistivity with N10/SPT N-values from DPL/SPT soundings, culminating in a 2D profile of N10/SPT N-values predicated on electrical profiles. The findings of this research furnish invaluable insights into slope stability by allowing for a two-dimensional representation of penetration resistance properties. Through the synthesis of geophysical and geotechnical data, this project aims to augment the comprehension of subsurface conditions, with potential implications for refining landslide risk evaluations. This endeavor offers insight into the formulation of more effective and precise slope management protocols and disaster prevention strategies.展开更多
文摘为研究黏土夹层对共振法处理可液化砂土地基效果的影响,按比例制备十字翼振杆并开展相关模型试验.根据加固前后轻型动力触探击数 N 10 、土颗粒峰值振动加速度 a 和砂土相对密度 D r 的变化,分析了黏土夹层对土体强度、能量传递规律及密实程度的影响.结果表明, N 10 和 a 值随着测点与振杆径向距离的增加而减小.受黏土夹层影响,加固前后土体强度增长幅度降低64%~127%, a 值也相应减少,且振动有效影响半径由0.4 m减少为0.3 m,砂土相对密实度增长幅度下降4.2%~9.7%.现场标贯试验及地表峰值振速监测结果进一步验证了模型试验的可靠性.地基中黏土夹层可使振点处的排水通道受阻,降低土体排水固结及能量传递效率,减弱了加固效果.
文摘In Brazil and various regions globally, the initiation of landslides is frequently associated with rainfall;yet the spatial arrangement of geological structures and stratification considerably influences landslide occurrences. The multifaceted nature of these influences makes the surveillance of mass movements a highly intricate task, requiring an understanding of numerous interdependent variables. Recent years have seen an emergence in scholarly research aimed at integrating geophysical and geotechnical methodologies. The conjoint examination of geophysical and geotechnical data offers an enhanced perspective into subsurface structures. Within this work, a methodology is proposed for the synchronous analysis of electrical resistivity geophysical data and geotechnical data, specifically those extracted from the Light Dynamic Penetrometer (DPL) and Standard Penetration Test (SPT). This study involved a linear fitting process to correlate resistivity with N10/SPT N-values from DPL/SPT soundings, culminating in a 2D profile of N10/SPT N-values predicated on electrical profiles. The findings of this research furnish invaluable insights into slope stability by allowing for a two-dimensional representation of penetration resistance properties. Through the synthesis of geophysical and geotechnical data, this project aims to augment the comprehension of subsurface conditions, with potential implications for refining landslide risk evaluations. This endeavor offers insight into the formulation of more effective and precise slope management protocols and disaster prevention strategies.