Agronomy (Dec 2024)

Determination of Biomechanical Parameters and Development of an Improved FEM Model for Perennial Alfalfa (<i>Medicago sativa</i> L.) Roots

  • Shuo Wang,
  • Xuanting Liu,
  • Hongyan Qi,
  • Zihe Xu,
  • Yunhai Ma

DOI
https://doi.org/10.3390/agronomy14123033
Journal volume & issue
Vol. 14, no. 12
p. 3033

Abstract

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Grassland degradation and reduced yields are often linked to the root soil composite of perennial alfalfa roots. This study introduces a novel modeling approach to accurately characterize root biomechanical properties, assist in the design of soil-loosening and root-cutting tools. Our model conceptualizes the root as a composite structure of cortex and stele, applying transversely isotropic properties to the stele and isotropic properties to the cortex. Material parameters were derived from longitudinal tension, longitudinal compression, transverse compression, and shear tests. The constitutive model of stele was Hashin failure criteria, accounting for differences in tensile and compressive strengths. Results reveal that root tensile strength mainly depends on the stele, with its tensile properties exceeding compressive and transverse strengths by 4–10 times. In non-longitudinal tensile stress scenarios, like shear and transverse compression tests, the new model demonstrated superior accuracy over conventional models. Results of shear tests were further validated using non-parametric statistical analysis. This study provides a finite element method (FEM) modeling approach that, by integrating root anatomical features and biomechanical properties, significantly enhances simulation accuracy. This provides a tool for designing low-energy consumption components in grassland degradation restoration and conservation tillage.

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