Research on the Reinforcement Characteristics of Thick Cushion Layer and Rigid Pile Composite Foundation

Author:

Chen Junhua12,Nie Yuzhi1,Lian Guan1,Chen Aijun1,Pu Siqi1,Zou Jinfeng2,Zhang Jiasheng2,Shi Xiong1,Wu Di1,Yang Bai1

Affiliation:

1. School of Architecture and Transportation Engineering, Guilin University of Electronic Technology, Guilin 541004, China

2. Traffic and Transportation Engineering Postdoctoral Mobile Station, School of Civil Engineering, Changsha 410075, China

Abstract

The rigid pile composite foundation method is the most commonly used method for strengthening weak soil foundations. In this method, piles usually need to pass through weak soil layers, and the pile end falls on a bearing layer with good bearing capacity. Under existing technical conditions, the thicker the weak soil layer, the longer the pile body, and the more difficult it is to ensure the construction quality of the pile. In response to this issue, some scholars have adopted the rigid pile composite foundation method with a thick cushion layer for reinforcement treatment. This article uses PLAXIS 3D (V20.04.00.790) software to establish a finite element model of rigid pile composite foundation with a thick cushion layer and simulate the process of foundation reinforcement. The influence of parameters such as thickness, compression modulus, and shear strength index of the cushion layer on foundation settlement and pile–soil stress distribution is studied, and the reasonable range of these parameters is analyzed under the condition of considering reinforcement effect. Through comparative analysis, it can be concluded that for deep and weak soil areas, the thickness of the cushion layer can range from 0.5 to 2.6. The thickness and compressive modulus of the cushion layer have a significant impact on the settlement of the foundation, the pile–soil stress ratio, and the stress of the pile body, while the shear strength index of the cushion layer has a relatively small impact on these parameters. Reasonably selecting the geometric and mechanical parameters of the cushion layer can effectively reduce stress concentration at the pile top and better play the role of the soil between piles.

Funder

Research Basic Ability Improvement Project of Young and Middle-aged Teachers in Guangxi of China

Foundation for Science and Technology Base and Talents of Guangxi Province of China

Guangxi Natural Science Foundation

Publisher

MDPI AG

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