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Seismic response analysis of piled raft with grid-form deep mixing walls under strong earthquakes with performance-based design concerns

机译:基于性能设计的强地震作用下网格状深层搅拌墙排桩的地震反应分析

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A seismic response analysis of a piled raft foundation combined with cement deep mixing walls (DMWs), supporting a 12-story base-isolated building under strong earthquakes, was conducted using a three-dimensional finite element model. To evaluate the induced internal stresses in the DMWs against their capacity, a nonlinear elastic model with tensile and shear criteria was applied for the stabilized soil. In order to verify the deformation parameters of the DMWs and the soil, a numerical simulation was carried out using the moderate earthquake motion recorded during the 2011 Tohoku Earthquake. As the strong earthquake motion, Level 2 earthquakes with a mean return period of approximately 500 years were generated using two sets of phase data. Four numerical cases were conducted considering the effects of the presence of the DMWs on the seismic response of the piled raft system. Based on the dynamic analysis results, it is seen that the bending moments near the pile head were decreased significantly by the DMWs. This occurred because the amplification of the lateral ground displacements below the raft was restrained by the DMWs, and the shear force acting at the pile head was very small because the lateral external force acting at the bottom of the raft was carried mostly by the DMWs. It is also seen that the amplification of the acceleration response spectra of the raft with DMWs was substantially lower than that of the raft without DMWs in long periods of 1-2 s. This is probably due to the difference in the kinematic interaction effects between the foundation and the soft soil. Tensile and shear failure occurred in the DMWs, and the extent of the tensile failure was dominant. Nevertheless, it was found that the grid-form DMWs were quite effective for reducing the sectional force of the piles to an acceptable level, even if such partial failure occurred. The DMWs could be designed more rationally by following the principles of a performance-based design (PBD), because minor damage to DMWs can be tolerated under strong earthquakes provided that the required foundation performance has been satisfied. (C) 2018 Production and hosting by Elsevier B.V. on behalf of The Japanese Geotechnical Society.
机译:使用三维有限元模型对桩筏基础与水泥深层搅拌墙(DMW)结合的地震响应进行了分析,该层支撑12层基础隔离的建筑物在强地震下。为了评估DMWs中诱导的内应力与其承载力之间的关系,将具有拉伸和剪切准则的非线性弹性模型应用于稳定土。为了验证DMWs和土壤的变形参数,使用2011年东北地震记录的中等地震运动进行了数值模拟。作为强烈的地震运动,使用两组相位数据生成了平均返回期约为500年的2级地震。考虑到DMW的存在对桩筏系统地震响应的影响,进行了四个数值案例。根据动态分析结果,可以看到DMWs大大降低了桩头附近的弯矩。发生这种情况是因为DMWs限制了筏下方横向侧向位移的放大,而作用于桩头的剪力很小,这是因为作用于Raft底部的横向外力主要由DMW承载。还可以看到,在1-2 s的长时间内,带有DMWs的筏的加速度响应谱的放大率明显低于没有DMW的筏的加速度响应谱的放大率。这可能是由于基础与软土之间在运动学相互作用方面的差异所致。 DMW中发生拉伸和剪切破坏,而拉伸破坏的程度占主导。然而,已经发现,即使发生了这种局部破坏,网格形的DMW也非常有效地将桩的截面力减小到可接受的水平。通过遵循基于性能的设计(PBD)的原则,可以更合理地设计DMWs,因为只要满足了所需的基础性能,在强地震下对DMWs的轻微损害是可以容忍的。 (C)2018年由Elsevier B.V.代表日本岩土工程学会制作和托管。

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