A micromechanical model for estimating the shear modulus and damping ratio of loose sands under low stresses. Application to a Mars regolith simulant

B. Caicedo, M. J. Chaparro, J. P. Castillo Betancourt, M. Cabrera, P. Delage, P. Lognonné, B. Banerdt
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Abstract

The dynamic properties of loose sands under low stresses have been poorly investigated because of the higher order of magnitude of stress levels in terrestrial geotechnical structures. However, low densities and low stresses prevail in the sandy surface deposits of some other rocky planets, making low stress conditions relevant for extra-terrestrial soil mechanics. This is the case of Mars, on the surface of which a seismometer has been placed during the InSight mission. In this context, a dynamic shear rheometer was used to measure the shear modulus and damping ratio of a Martian regolith simulant under very low stresses to improve the interpretation of the InSight dataset on surface materials. This paper also revisits the grain contact stiffness and the overall modulus of a random packing of identical spheres, based on the Hertz-Mindlin contact theory. A micromechanical model accounting for the effects of both grain roughness and slipping in the soil degradation curve is proposed. The results of the model show a good agreement with experimental data, capturing the non-linear transition from low to high-shear strains. The model hence provides a new framework for a better understanding of the behaviour of granular materials in low gravity (extra-terrestrial) conditions.
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用于估算低应力下松散砂的剪切模量和阻尼比的微机械模型。应用于火星碎屑模拟物
由于陆地岩土结构中的应力水平数量级较高,因此对低应力条件下松散砂土的动态特性研究较少。然而,在其他一些岩质行星的沙质表面沉积物中普遍存在低密度和低应力的情况,这使得低应力条件与地外土壤力学相关。这就是火星的情况,在 InSight 任务中,地震仪被放置在火星表面。在这种情况下,使用动态剪切流变仪测量了火星碎石模拟物在极低应力下的剪切模量和阻尼比,以改进对 InSight 表面材料数据集的解释。本文还根据赫兹-明德林接触理论,重新研究了相同球体随机堆积的晶粒接触刚度和整体模量。本文提出了一个微观力学模型,该模型考虑了土壤降解曲线中晶粒粗糙度和滑动的影响。该模型的结果显示与实验数据十分吻合,捕捉到了从低剪切应变到高剪切应变的非线性过渡。因此,该模型为更好地理解颗粒材料在低重力(地外)条件下的行为提供了一个新的框架。
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