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Study on Effect of Ground Improvement on Lateral Load Carrying Capacity of Pile using Developed Simplified Soil-Pile Stiffness Matrix

机译:基于型桩桩刚度矩阵基础改善对桩侧载荷能力的影响研究

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摘要

In this present study, a Beam on Nonlinear Winkler Foundation approach has been utilized to study the effect of ground improvement on deformation characteristics of laterally loaded pile. Fourth-order governing differential equation of pile deformation has been solved, and a simplified pile-soil stiffness matrix has been developed. The optimum depth (from ground surface) up to which engineering properties of soil require to be improved has been ascertained using a computer code developed in MATLAB utilizing the developed soil-pile stiffness matrix. This optimum depth can be defined as the depth beyond which the improvement in engineering properties of soil (e.g., deformation modulus) has negligible effect on deformation characteristics of laterally loaded pile. Optimum depth has been suggested for different slenderness ratios of piles installed in soft-to-medium-stiff clayey soil deposit, and statistical equations have been developed to find the optimum depth of ground improvement for different pile slenderness ratios (L/D) and relative stiffness (E-p/E-s) of pile. The study reveals that the optimum layer improvement ratio (L1/L) reduces with the increased pile slenderness ratio (L/D) and increases with the increased relative stiffness (E-p/E-s) of pile. Design charts have been proposed to get a preliminary estimation of lateral pile capacity in virgin clay as well as improved clay for different layer improvement ratios (L1/L).
机译:在本研究中,已经利用了非线性Winkler基础方法的梁研究了地面改善对横向装载桩变形特性的影响。已经解决了桩变形的四阶控制微分方程,已经开发了简化的桩土刚度基质。利用Matlab中开发的土壤桩刚度矩阵,已经确定了利用Matlab中开发的计算机代码来确定最佳深度(来自地面)的最佳深度(从地面)。这种最佳深度可以被定义为超出土壤(例如,变形模量)的工程性质的改善的深度具有可忽略不计的横向装载桩的变形特性的效果。已经提出了在软到中克莱氏菌土壤沉积物中安装的桩的不同细长比的最佳深度,并开发了统计方程来找到不同桩细长比(L / D)和相对的最佳地改善深度桩刚度(EP / es)。该研究表明,最佳层改善比(L1 / L)随着桩细长比(L / D)的增加而降低,并随着桩的相对刚度(E-P / E-S)增加而增加。已经提出了设计图表,以获得维尔氏粘土中的横向桩容量的初步估计,以及改善不同层改善比(L1 / L)的粘土。

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