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May 24, 2026Sustainability2 citationsOpen Access

Root Reinforcement by Vetiver Grass (Chrysopogon zizanioides) for Sustainable Slope Stabilization in Two Andean Soil Types: Evidence from Laboratory Testing and Numerical Modeling

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CFCamila Nickole Fernández-MorochoJCJose Luis Chavez-TorresKZKunyong Zhang

Key Points

  • This study aims to evaluate the effectiveness of vetiver grass in reinforcing slopes in two Andean soil types to enhance stability against landslides.
  • Established a reduced-scale physical model with 30 days of vetiver root development.
  • Conducted consolidated–drained direct shear tests to assess shear strength parameters.
  • Performed numerical slope stability analyses using Slide and PLAXIS 2D under various conditions.
  • Effective cohesion increased by 22.7% in sandy silt and 19.0% in sandy clay.
  • Internal friction angle increased by 21.8% in sandy silt and 12.2% in sandy clay.
  • The factor of safety improved from FS = 0.841 to FS = 1.309 in sandy silt at a 45° slope with a water table.

Abstract

Landslides are a recurrent geohazard in Andean urban environments, where weak soils, intense seasonal rainfall, and unplanned urban expansion combine to increase slope vulnerability. In such settings, sustainable hillside management requires stabilization strategies that are both technically effective and environmentally compatible. This study evaluates the effect of root reinforcement by vetiver grass (Chrysopogon zizanioides) on slope stability in two representative soils from Loja, Ecuador: sandy silt (SM) and sandy clay (SC). A reduced-scale physical model with 30 days of root development was established, and consolidated–drained direct shear tests (ASTM D3080/D3080M-23) were performed to determine the shear strength parameters under bare and vetiver-reinforced conditions. These parameters were then incorporated into numerical slope stability analyses using Slide and PLAXIS 2D, considering three slope angles (30°, 45°, and 50°), six root-positioning configurations, and hydraulic conditions with and without a water table. Vetiver increased effective cohesion by 22.7% in sandy silt and 19.0% in sandy clay, while the internal friction angle increased by 21.8% and 12.2%, respectively. Across all modeled scenarios, vetiver produced a consistent improvement in the factor of safety. The most critical case, corresponding to sandy silt at 45° with a water table, increased from FS = 0.841 in the control condition to FS = 1.309 under the full-coverage configuration. Parametric sensitivity analysis yielded coefficients of variation between 4.97% and 7.03%, indicating a stable model response under controlled parameter perturbations. These findings support vetiver as an experimentally grounded and environmentally sustainable Nature-based Solution for slope stabilization and provide relevant evidence for sustainable management of hazard-prone urban hillsides in vulnerable Andean settings.

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Cite This Study

Fernández-Morocho et al. (2026) studied this question.

synapsesocial.com/papers/6a1295e248a0ea16656723f9https://doi.org/10.3390/su18115220
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