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Mechanical Reinforcement of Soil by Willow Roots: Impacts of Root Properties and Root Failure Mechanism

机译:柳树根对土壤的机械增强作用:根系性质和根系破坏机理的影响

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摘要

Plant roots have considerable impact on the mechanical stability of soil, but to date the underlying mechanisms have been poorly quantified. In this study, controlled laboratory studies of soil reinforced with willow trees (Salix viminalis cv Tora) found a strong correlation between the cross-sectional area of soil covered by roots and shear reinforcement. We separated broken versus pulled-out roots and measured individual root diameters crossing the shear-plane. The shear strength of planted specimens compared with non-planted specimens increased eight-fold at 0.10-m shear depth, more than four-fold at 0.25-m depth, and more than doubled at 0.40-m depth. These data were used to evaluate several models of root-reinforcement. Models based on catastrophic and simultaneous failure of all roots overpredicted reinforcement by 33% on average. Better agreement between experimental and model results was found for a stress-based fiber-bundle-model, in which roots break progressively from weakest to strongest, with the load shared on the remaining roots at each step. Roots have a great capacity to reinforce soils, with existing models providing reasonable predictions of increased shear strength. However, deterministic understanding and modeling of the processes involved needs to consider root failure mechanisms. In particular, the role of root stiffness and root-soil adhesion is not considered in existing models of soil reinforcement by plant roots.
机译:植物根系对土壤的机械稳定性有相当大的影响,但迄今为止,其潜在机理尚未得到很好的量化。在这项研究中,对用柳树(Salix viminalis cv Tora)加固的土壤进行的受控实验室研究发现,根部覆盖的土壤横截面积与抗剪加固之间存在很强的相关性。我们分离了断根和拔出根,并测量了横切面的单个根直径。与未种植标本相比,种植标本的剪切强度在0.10-m剪切深度下增加了八倍,在0.25-m深度处增加了四倍,在0.40-m深度下增加了两倍。这些数据用于评估根部加固的几种模型。基于所有根的灾难性和同时失效的模型平均高估了33%的钢筋。对于基于应力的纤维束模型,发现了实验结果与模型结果之间的更好一致性,其中根部从最弱到最强逐渐折断,并且在每个步骤中,其余根部均分担了负荷。根具有增强土壤的强大能力,现有模型可以合理预测增加的剪切强度。但是,对所涉及过程的确定性理解和建模需要考虑根故障机制。尤其是,在现有的通过植物根部加固土壤的模型中,并未考虑根部僵硬和根部土壤附着力的作用。

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