Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Interface shear mechanisms in concrete–cement soil composite piles revealed by ring shear testing

View through CrossRef
Abstract Composite piles consisting of an inner precast concrete core and an outer cement soil column have been increasingly used in soft ground, whereas their load-transfer mechanism is governed by two interfaces, namely the concrete-cement soil interface and the cement soil-surrounding soil interface. In this study, ring shear tests were conducted on the two interfaces to investigate their shear behavior, failure characteristics, and strength evolution, and corresponding constitutive models and practical strength estimation methods were established. The results show that the concrete-cement soil interface exhibits a three-stage response of initial loading, post-peak softening, and residual stabilization, and its shear strength increases with both cement soil strength and normal stress. In contrast, the cement soil-soil interface shows a strain-hardening response followed by a stable stage, and its shear strength is primarily controlled by the normal stress and the properties of the surrounding soil. Based on the test results, a three-segment linear constitutive model was proposed for the concrete-cement soil interface, and its strength can be estimated from the intrinsic strength parameters of the cement soil. Moreover, a nonlinear hyperbolic constitutive model was proposed for the cement soil-soil interface, and its strength can be approximately evaluated from the internal friction angle of the surrounding soil. This study clarifies the interface mechanical behavior of composite pile foundations, providing experimental support and a theoretical basis for bearing-capacity analysis and design calculations of composite pile foundations.
Springer Science and Business Media LLC
Title: Interface shear mechanisms in concrete–cement soil composite piles revealed by ring shear testing
Description:
Abstract Composite piles consisting of an inner precast concrete core and an outer cement soil column have been increasingly used in soft ground, whereas their load-transfer mechanism is governed by two interfaces, namely the concrete-cement soil interface and the cement soil-surrounding soil interface.
In this study, ring shear tests were conducted on the two interfaces to investigate their shear behavior, failure characteristics, and strength evolution, and corresponding constitutive models and practical strength estimation methods were established.
The results show that the concrete-cement soil interface exhibits a three-stage response of initial loading, post-peak softening, and residual stabilization, and its shear strength increases with both cement soil strength and normal stress.
In contrast, the cement soil-soil interface shows a strain-hardening response followed by a stable stage, and its shear strength is primarily controlled by the normal stress and the properties of the surrounding soil.
Based on the test results, a three-segment linear constitutive model was proposed for the concrete-cement soil interface, and its strength can be estimated from the intrinsic strength parameters of the cement soil.
Moreover, a nonlinear hyperbolic constitutive model was proposed for the cement soil-soil interface, and its strength can be approximately evaluated from the internal friction angle of the surrounding soil.
This study clarifies the interface mechanical behavior of composite pile foundations, providing experimental support and a theoretical basis for bearing-capacity analysis and design calculations of composite pile foundations.

Related Results

FLY ASH FOUNDATION REINFORCED BY CEMENT–SOIL MIXING PILES
FLY ASH FOUNDATION REINFORCED BY CEMENT–SOIL MIXING PILES
Cement-soil mixing piles have been commonly used to enhance the bearing capacity of fly ash stratum and mitigate the settlement damage to the surrounding environment. However, only...
The cement-bone bond is weaker than cement-cement bond in cement-in-cement revision arthroplasty. A comparative biomechanical study
The cement-bone bond is weaker than cement-cement bond in cement-in-cement revision arthroplasty. A comparative biomechanical study
This study compares the strength of the native bone-cement bond and the old-new cement bond under cyclic loading, using third generation cementing technique, rasping and contaminat...
Lubricating Effects Against Interfaces Shear Strength Of Soil–Concrete And Concrete–Concrete
Lubricating Effects Against Interfaces Shear Strength Of Soil–Concrete And Concrete–Concrete
Box Jacking is a trenchless method of underpass construction that consists in pushing one or more prefabricated concrete boxes into the soil using high capacity hydraulic jacks, wh...
Expanding Cements for Primary Cementing
Expanding Cements for Primary Cementing
Abstract The expansion of cement and the effect of various expansive aids upon oil well cementing compositions have been investigated to determine the amount of e...
An Evaluation Cement Method Using Gamma-Gamma Density Imaging Logging in a Double Casing Well
An Evaluation Cement Method Using Gamma-Gamma Density Imaging Logging in a Double Casing Well
Deep wells, ultradeep wells, and some offshore oil wells are characterized by high pressure and high temperature, and their cementing casing is often prone to collapse and rupture....
Observations of the soil particle movement during direct shear tests on soil-geosynthetic interfaces
Observations of the soil particle movement during direct shear tests on soil-geosynthetic interfaces
The shear strength between soil-geosynthetic interface has been well studied by conducting large scale direct shear tests. However, the documents of the development of shear band a...
Ecological soil physics as section of ecological soil science
Ecological soil physics as section of ecological soil science
Nowadays, there is a general penetration of ecology in other related sciences. Soil science is not an exception. To the evidence of this, the works of soil scientists may serve, th...
Real-Time Distributed Fiber Optic Sensing for Cement Sheath Integrity Monitoring
Real-Time Distributed Fiber Optic Sensing for Cement Sheath Integrity Monitoring
ABSTRACT: The integrity of cement sheath is critical to oil and gas effective extraction, in which the cement displacement efficiency and solidify quality are the...

Back to Top