黏性土充填体墙体倾角对动力主动推力的影响

Ashish Gupta, Vikas Yadav, V. Sawant, R. Agarwal
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引用次数: 2

摘要

地震条件下挡土墙的设计是基于墙后地震土压力的计算。为了计算竖向挡土墙后的地震主动土压力,许多研究人员报告了非粘性土和粘性土填土的拟静力法解析解。给出了无量纲形式竖向挡土墙后地震主动土压力计算的设计简图。对于倾斜挡土墙,c- φ土填土的地震主动土压力计算解析解和设计简图(无量纲形式)已在少数研究中得到报道。本文采用Shukla(2015)对斜挡土墙后地震主动土压力计算的一种解析解,得到无量纲形式的设计图。在本分析中使用了与墙体几何形状、地震荷载、张拉裂缝、回填土特性、堆填土和墙体摩擦力有关的不同现场参数。本研究利用c- φ土填土设计图表,量化了墙体负倾角和正倾角对地震主动地压力的影响,以及土体黏聚力(c)、抗剪角(φ)、堆载荷载(q)、水平和垂直地震系数(kh和kv)对地震主动地压力的影响。这里以无量纲形式提供的设计图易于使用,可由现场工程师用于地震条件下倾斜挡土墙的设计。从本研究中获得的无粘性土回填土的主动土压力系数与文献报道的研究相验证。
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Effect of Wall Inclination on Dynamic Active Thrust for Cohesive Soil Backfill
Design of retaining walls under seismic conditions is based on the calculation of seismic earth pressurebehind the wall. To calculate the seismic active earth pressure behind the vertical retaining wall, many researchers reportanalytical solutions using the pseudo-static approach for both cohesionless and cohesive soil backfill. Design charts havebeen presented for the calculation of seismic active earth pressure behind vertical retaining walls in the non-dimensionalform. For inclined retaining walls, the analytical solutions for the calculation of seismic active earth pressure as well as thedesign charts (in non-dimensional form) have been reported in few studies for c-ϕ soil backfill. One analytical solution forthe calculation of seismic active earth pressure behind inclined retaining walls by Shukla (2015) is used in the present studyto obtain the design charts in non-dimensional form. Different field parameters related with wall geometry, seismic loadings,tension cracks, soil backfill properties, surcharge and wall friction are used in the present analysis. The present study hasquantified the effect of negative and positive wall inclination as well as the effect of soil cohesion (c), angle of shearingresistance (ϕ), surcharge loading (q) and the horizontal and vertical seismic coefficient (kh and kv) on seismic active earthpressure with the help of design charts for c-ϕ soil backfill. The design charts presented here in non-dimensional form aresimple to use and can be implemented by field engineers for design of inclined retaining walls under seismic conditions. Theactive earth pressure coefficients for cohesionless soil backfill achieved from the present study are validated with studiesreported in the literature.
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RETRACTION NOTE TO: ASSESSING SEISMIC SOIL LIQUEFACTION POTENTIAL USING MACHINE LEARNING APPROACH EFFECT OF ADDITION OF CaO ON COMPRESSIVE STRENGTH OF HIGH-VOLUME FLY ASH CONCRETE EDITORIAL SCOPE – WASTE MANAGEMENT AND RECYCLING MATLAB PROGRAM FOR RATING SOILS BASED ON ENGINEERING BEHAVIOURS NONLINEAR LATERAL RESPONSE OF PILE GROUP IN CLAY USING THE MODIFIED CAM CLAY SOIL MODEL
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