A modified creep index and its application to viscoplastic modelling of soft clays
Qi-Yin Zhu, Ze-xiang Wu, Yanling Li, Changjie Xu, Jianhua Wang, Xiaohe Xia
Abstract
Open-access reader
Qi-Yin Zhu, Ze-xiang Wu, Yanling Li, Changjie Xu, Jianhua Wang, Xiaohe Xia
Abstract
Open-access reader
Conventional consolidation tests on reconstituted specimens of numerous natural soft clays show a decreasing of creep index C αe with increasing soil density. Based on all selected and conducted experimental results, a modified creep index C* αe defined in double logarithmic plane lge-lgt, was plotted for various clays, from which C* αe can be assumed as a constant for different soil densities. Then, the modified creep index was applied to a newly developed elastic viscoplastic model. In this way, the modified creep index C* αe can naturally take into account the nonlinear C αe revealing the influence of soil density in the soil assemblies without additional parameters. Finally, the enhanced model was incorporated into the finite element code ABAQUS and used to simulate a consolidation test and a test embankment. The improvement of simulations by the modified creep index was highlighted by comparing simulations using the conventional creep index C αe.
OpenAlex reports 13 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
Conventional consolidation tests on reconstituted specimens of numerous natural soft clays show a decreasing of creep index C αe with increasing soil density. Based on all selected and conducted experimental results, a modified creep index C* αe defined in double logarithmic plane lge-lgt, was plotted for various clays, from which C* αe can be assumed as a constant for different soil densities. Then, the modified creep index was applied to a newly developed elastic viscoplastic model. In this way, the modified creep index C* αe can naturally take into account the nonlinear C αe revealing the influence of soil density in the soil assemblies without additional parameters. Finally, the enhanced model was incorporated into the finite element code ABAQUS and used to simulate a consolidation test and a test embankment. The improvement of simulations by the modified creep index was highlighted by comparing simulations using the conventional creep index C αe.
Key concepts: Viscoplasticity, Creep, Index (typography), Materials science, Geotechnical engineering, Composite material, Constitutive equation, Geology