Geomechanics and Engineering A
Volume 36, Number 4, 2024, pages 317-328
DOI: 10.12989/gae.2024.36.4.317
Effect of loading frequency and clay content on the dynamic properties of sandy-clay mixtures using cyclic triaxial tests
Alireza Hasibi Taheri, Navid Hadiani, S. Mohammad Ali Sadredini and Mahmood Zakeri Nayeri
Abstract
Adopting a rational engineering methodology for building structures on sandy-clay soil layers has become increasingly important since it is crucial when structures erected on them often face seismic and cyclic wave loads. Such loads can cause a reduction in the stiffness, strength, and stability of the structure, particularly under un-drained conditions. Hence, this study aims to investigate how the dynamic properties of sand-clay mixtures are affected by loading frequency and clay content. Cyclic triaxial tests were performed on a total of 36 samples, comprising pure sand with a relative density of 60% and sand with varying percentages of clay. The tests were conducted under confining pressures of 50 and 100 kPa, and the samples' dynamic behavior was analyzed at loading frequencies of 0.1, 1, and 4 Hz. The findings indicate that an increase in confining pressure leads to greater inter-particle interaction and a reduced void ratio, which results in an increase in the soil's shear modulus. An increase in the shear strength and confinement of the samples led to a decrease in energy dissipation and damping ratio. Changes in loading frequency showed that as the frequency increased, the damping ratio decreased, and the strength of the samples increased. Increasing the loading frequency not only reflects changes in frequency but also reduces the relative permeability and enhances the resistance of samples. An analysis of the dynamic properties of sand and sand-clay mixtures indicates that the introduction of clay to a sand sample reduces the shear modulus and permeability properties.
Key Words
cyclic triaxial test; dynamic parameters; loading frequency; sandy-clay; shear modulus
Address
Alireza Hasibi Taheri, Navid Hadiani, S. Mohammad Ali Sadredini and Mahmood Zakeri Nayeri: Islamic Azad University Islamshahr Branch, Tehran, Iran