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February 2, 2026International Journal for Numerical and Analytical Methods in Geomechanics0 citationsOpen Access

Insights Into the Mechanisms Controlling the Residual Strength of Bio‐cemented Sands

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AZAoxi ZhangFCF. CollinAWAntoine Wautier

Key Points

  • To explore how microbially induced carbonate precipitation affects the residual strength of bio-cemented sands.
  • Utilized discrete element method (DEM) to analyze granular soil behaviors.
  • Examined the impact of carbonate precipitation on the contact network.
  • Studied strain localization mechanisms upon shearing in bio-cemented sands.
  • Demonstrated that carbonate formation can lead to reduced residual strength.
  • Identified grain-bridging patterns that alter the soil's contact network.
  • Showed that cohesive strength can stabilize microstructural integrity and mitigate weakening.

Abstract

ABSTRACT Microbially induced carbonate precipitation (MICP) is an emerging technique for enhancing the mechanical properties of granular soils. Although several experimental studies have reported increased shear strength in MICP‐treated soils at both peak and residual states, other findings have shown reductions in residual strength compared to untreated soils. This study uses the discrete element method (DEM) to investigate the mechanisms governing the residual strength of bio‐cemented sands. The results indicate that residual strength may decrease when carbonate precipitates in the form of grain‐bridging patterns. In that case, the introduction of carbonates alters the contact network and may induce metastable configurations, particularly when the bonds are weak or non‐cohesive. These configurations are prone to strain localisation upon shearing, leading to the development of shear bands and a reduction in residual strength. Conversely, higher cohesive strength enhances microstructural stability, offsetting the weakening effects of localisation. The residual strength of bio‐cemented sands is therefore governed by two competing mechanisms, namely bond‐induced stabilisation and instability‐driven localisation.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/6980fd18c1c9540dea80ed9ehttps://doi.org/10.1002/nag.70239
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