Oct 2026· International Journal of Geomechanics· Vol 26· 0 citations· 36 references
Abstract
This study investigates the time-dependent mechanical behavior of rocks and granular materials, challenging the conventional view of their response as time-independent. We present a rheological model that effectively simulates active loading, creep, and stress relaxation in geomaterials, validated through laboratory experiments on a wet limestone sample. Traditional elastic and plastic models often fail to capture the complexities of rock behavior under prolonged stress, necessitating the use of viscoplastic models that integrate rate-dependent plasticity. Building on existing research, we developed a combined elasto-viscoplastic model featuring two groups of Shvedova–Bingham–Norton viscoplastic elements. The first pair accounts for elastoplastic deformation during active loading, while the second pair activates beyond a critical stress level, known as the D-point, at which significant microstructural changes occur. The model accurately captures the essential time-dependent behaviors of creep and stress relaxation, demonstrating excellent correlation with experimental data across all loading stages. Parametric studies reveal the model's unique behavior and its sensitivity to parameter variations, highlighting its robustness. This research contributes to the understanding of rock mechanics and provides a simplified yet physically interpretable framework for modeling complex deformation processes, facilitating practical applications in geotechnical, mining, and petroleum engineering contexts.
The time-dependent deformation and stability of fractured rock in seasonally frozen regions constitute a key scientific issue for engineering safety. To investigate the long-term deformation of fractured rock under the coupling of freeze-thaw (F-T) cycles and sustained loading, this study systematically examined the ef...
Rui Li, Jian-Xi Ren, Kai Su et al.· Scientific Reports· 0 citations
Stress relaxation is a common phenomenon in fine-grained soils. However, most existing studies rely on laboratory triaxial tests, with limited attention to in situ methods. In particular, the relaxation behavior under cone penetration test (CPT) conditions has not been systematically investigated. Through triaxial re...
Xuesen Liu, Tao Liu, Zhong-Nian Yang et al.· Journal of Geotechnical and...· 0 citations
Moisture content significantly impacts the time-dependent deformation and long-term stability of intensely altered rocks. To investigate their complex creep behavior, a fractional-order viscoelastoplastic constitutive model was developed using fractional calculus. The model employs Abel dashpots to characterize both vi...
Shao-Bo Qiao, Jian Li, Rui-Qiang Niu et al.· Frontiers in Earth Science· 0 citations
Advanced High-Strength Steel (AHSS) exhibits stress-state-dependent competing shear–tensile fracture modes that limit the applicability of conventional ductile fracture criteria based solely on equivalent plastic strain accumulation, such as the Forming Limit Diagram (FLD) approach and the classical Gurson–Tvergaard–Ne...
Hong-Pai Zhu, Di Li, Junjie Liu et al.· Materials· 0 citations
Accurate characterization of rock creep under coupled chemical–stress–seepage conditions is essential for deep rock stability. A three‐dimensional fractional‐order creep constitutive model is developed. Chemical, stress, and seepage damage are quantified by elastic modulus degradation, the Kachanov evolution, and p...
Shutian Zhao, Shu-Guang Zhang, Jun-Kang Zhao et al.· Fatigue & Fracture of En...· 0 citations
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