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首页> 外文期刊>Soil & Tillage Research >Mechanical behaviour of an undisturbed soil subjected to loadings: effects of load and contact area.
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Mechanical behaviour of an undisturbed soil subjected to loadings: effects of load and contact area.

机译:承受载荷的原状土的力学行为:载荷和接触面积的影响。

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摘要

This paper deals with the stresses and deformations induced by loading an undisturbed soil. Measurements of vertical stress and displacement were performed in two dimensions in large soil bins. The experiment included four loading treatments with two loads (F=43 kN and 2F=85 kN) and two contact areas (A=0.45 m2 and 2A=0.90 m2). The loads were applied by stiff plates to a very homogeneous and undisturbed loamy soil established in the soil bins 12 years prior to the tests. Twenty-one pressure transducers and nine displacement transducers were inserted horizontally from an inspection tunnel with minimal disturbance of soil. Vertical stress measurements included four depths (30, 50, 70 and 90 cm) and two to seven positions from the centre of load. Measured vertical stresses were compared to vertical stresses calculated with the Sohne model. Measured vertical displacements were used to evaluate the structural failure criterion. Doubling the contact area reduced stresses and strains in the topsoil, but load determined stresses and strains in the subsoil, which supports the elasticity theory. The Sohne model predicted the stresses in the soil profile with a maximum bias of 7 and 27 kPa for the low and high load, respectively. The best prediction was obtained with a concentration factor nu ~ 5-6 and nu ~ 8-9 for the low and high load, respectively. This indicates that the concentration factor depends on both soil mechanical characteristics and loading conditions. The model underestimated stresses when the soil deformation was large. No plastic strain was recorded if the calculated major principal stress was smaller than the precompression stress. For soil directly under the load axis, strain increased with increases in both the calculated major principal stress, if higher than precompression stress, and in the calculated minor principal stress. In contrast, for soil at the periphery of the loaded area plastic strain related better to the calculated minor principal stress and did not relate to the calculated major principal stress. This indicates that shear failure may be important, especially near the limits of the loaded area. More studies are urgently needed to evaluate the performance of the Sohne model in the field and to better understand the mechanical behaviour of pedologically mature soils.
机译:本文研究了由未扰动土引起的应力和变形。垂直应力和位移的测量是在大型土壤箱中二维进行的。实验包括四个载荷处理,两个载荷(F = 43 kN和2F = 85 kN)和两个接触区域(A = 0.45 m2和2A = 0.90 m2)。在试验前12年,用刚性板将载荷施加到土壤箱中非常均匀且不受干扰的壤土上。从检查隧道中水平插入了21个压力传感器和9个位移传感器,对土壤的干扰最小。垂直应力测量包括四个深度(30、50、70和90 cm)以及距载荷中心2至7个位置。将测得的垂直应力与用Sohne模型计算的垂直应力进行比较。测得的垂直位移用于评估结构破坏准则。接触面积加倍可以减少表土中的应力和应变,但载荷决定了地基中的应力和应变,这支持了弹性理论。 Sohne模型用低和高负荷分别以7 kPa和27 kPa的最大偏差来预测土壤剖面中的应力。对于低负荷和高负荷,分别使用浓度因子nu〜5-6和nu〜8-9可获得最佳预测。这表明浓度因子取决于土壤的机械特性和负荷条件。当土壤变形较大时,该模型低估了应力。如果计算出的主要主应力小于预压缩应力,则不会记录塑性应变。对于直接位于载荷轴下方的土壤,应变会随着计算的主要主应力(如果高于预压缩应力)和计算的次要主应力的增加而增加。相反,对于加载区域外围的土壤,塑性应变与计算的次要主应力相关性更好,而与计算的主要主应力无关。这表明剪切破坏可能很重要,尤其是在加载区域的极限附近。迫切需要进行更多的研究以评估Sohne模型在该领域的性能,并更好地了解具有土壤学意义的土壤的力学行为。

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