2008•Unpublished venueRequires access

A BOUNDING SURFACE PLASTICITY BASED CONSTITUTIVE MODEL FOR DILATANT SAND

Chi Ming-jie

Open publisher page 0 citations

Abstract

One of the key issues in soil mechanics modeling is to correctly define the dilatancy function.Dense and medium dense sands dilate under drained conditions and develop negative excess pore water pressure when sheared under undrained conditions.A phase transformation line is present for dense and medium dense sand and characterizes the state from contractive to dilative.The phase transformation line is affected by the original void ratio and the effective confining pressure.In the proposed model,the state parameter which makes the phase transformation line as reference line is introduced into the stress-dilatancy equation.The plastic hardening modulus expression is used to develop a new dilatant constitutive model for sand within the general framework of bounding surface plasticity.The present model simulates,with a single set of model constants,both the contractive and the dilative responses of granular soils over a wide range of variations in stress and material internal states.The model can be used for both monotonic and cyclic loading paths under either drained or undrained conditions.It has been shown that the calculated results fit well with the test results.

About this research paper

What this paper is about

One of the key issues in soil mechanics modeling is to correctly define the dilatancy function.Dense and medium dense sands dilate under drained conditions and develop negative excess pore water pressure when sheared under undrained conditions.A phase transformation line is present for dense and medium dense sand and characterizes the state from contractive to dilative.The phase transformation line is affected by the original void ratio and the effective confining pressure.In the proposed model,the state parameter which makes the phase transformation line as reference line is introduced into the stress-dilatancy equation.The plastic hardening modulus expression is used to develop a new dilatant constitutive model for sand within the general framework of bounding surface plasticity.The present model simulates,with a single set of model constants,both the contractive and the dilative responses of granular soils over a wide range of variations in stress and material internal states.The model can be used for both monotonic and cyclic loading paths under either drained or undrained conditions.It has been shown that the calculated results fit well with the test results.

Why it matters

A significance statement is not available in the OpenAlex record.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

One of the key issues in soil mechanics modeling is to correctly define the dilatancy function.Dense and medium dense sands dilate under drained conditions and develop negative excess pore water pressure when sheared under undrained conditions.A phase transformation line is present for dense and medium dense sand and characterizes the state from contractive to dilative.The phase transformation line is affected by the original void ratio and the effective confining pressure.In the proposed model,the state parameter which makes the phase transformation line as reference line is introduced into the stress-dilatancy equation.The plastic hardening modulus expression is used to develop a new dilatant constitutive model for sand within the general framework of bounding surface plasticity.The present model simulates,with a single set of model constants,both the contractive and the dilative responses of granular soils over a wide range of variations in stress and material internal states.The model can be used for both monotonic and cyclic loading paths under either drained or undrained conditions.It has been shown that the calculated results fit well with the test results.

Key concepts: Dilatant, Void ratio, Geotechnical engineering, Pore water pressure, Plasticity, Constitutive equation, Hardening (computing), Mechanics

Related papers

Back to paper searchBrowse research topicsOriginal source
A BOUNDING SURFACE PLASTICITY BASED CONSTITUTIVE MODEL FOR DILATANT SAND — Research Paper | ScholarLens