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March 27, 2026International Journal for Numerical and Analytical Methods in Geomechanics3 citations

Mechanisms and Stability of Adhesion‐Controlled Arching in Granular Materials

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XFXuejun FuSYShengtao YangHWHao Wang

Key Points

  • To explore how particle adhesion affects the arching phenomenon in granular materials and to characterize the underlying mechanisms.
  • Conducted discrete element method (DEM) simulations to analyze particle interactions.
  • Incorporated a surface energy-based adhesive interaction model to simulate varying adhesion strengths.
  • Observed the evolution of three distinct arching patterns based on different adhesion levels.
  • Identified three arching patterns: progressive arching, structural arch, and beam-arching.
  • Higher adhesion leads to increased deformation constraints and stress concentration.
  • Decreased porosity evolution results in more stable load-bearing arches.

Abstract

ABSTRACT Arching in granular materials is a general phenomenon that exists in different domains of engineering such as underground excavations and particle flow in silos and hoppers. However, the arching effect in adhesive granular systems, which is common in practice, remains insufficiently understood. This study investigates the influence of particle adhesion on the evolution of the arching effect through discrete element method (DEM) trapdoor simulations. A surface energy‐based adhesive interaction model was incorporated to represent varying adhesion strengths between particles. The results reveal three distinct arching patterns termed as progressive arching, structural arch, and beam‐arching patterns, corresponding to a transition from friction‐dominated to adhesion‐controlled arching mechanisms as particle adhesion increases. With higher adhesion, deformation becomes increasingly constrained, stress concentration intensifies, and volumetric changes are suppressed. Increasing burial depth further amplifies stress redistribution within stationary zones and demands stronger adhesion for stable arching formation. Microscopically, particle adhesion enhances the continuity and anisotropy of contact force chains while reducing porosity evolution, resulting in a more persistent load‐bearing arching. These findings provide a multiscale understanding of how adhesion modifies the stability and stress‐transfer mechanisms of the arching effect, offering valuable insights for predicting deformation, optimizing ground reinforcement, as well as mitigating clogging in particulate‐handling processes.

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Cite This Study

Fu et al. (2026) studied this question.

synapsesocial.com/papers/69c6207d15a0a509bde18ec4https://doi.org/10.1002/nag.70303
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