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Updated: Jul 27, 2026

A Coupled Experiment-finite Element Modeling Methodology for Assessing High Strain Rate Mechanical Response of Soft Biomaterials
Published on: May 18, 2015
Research on PFC3D meso-parameters prediction model and strength simulation of backfill based on hemical-mechanical
Yong Wang1,2, Chen Cao3,4, Defeng Wang5
1School of Resources and Safety Engineering, University of Science and Technology Beijing, Beijing, 100083, China.
None:
This study develops and validates a meso-parameter prediction model for backfill materials in PFC3D, enabling efficient numerical construction under varying curing ages and mix ratios. A quantitative correlation was established between hydration degree of the backfill and macroscopic mechanical properties, facilitating prediction of performance evolution. Using the parallel bonded contact model, the effective modulus [Formula: see text]* was found to exhibit a linear relationship with the macroscopic elastic modulus E, while the stiffness ratio [Formula: see text] n/[Formula: see text] s demonstrated a strong correlation with Poisson's ratio v. Compressive strength σ was shown to depend on both [Formula: see text] n/[Formula: see text] s and the bonding parameter σn/σs. Based on these relationships, a coupled chemo-mechanical prediction framework was developed to integrate hydration, mechanical response, and meso-scale input parameters. Validation against uniaxial and biaxial simulations demonstrated good agreement with laboratory tests, with mean errors below 8.5% for strength and 10% for deformation. Simulated failure modes closely reproduced experimental observations, confirming model reliability. Application to real stope conditions further demonstrated its capability to evaluate backfill strength. This work provides a mechanistic foundation for efficient and accurate parameter determination, supporting predictive modeling of cemented backfill systems.
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