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首页> 外文期刊>Canadian Geotechnical Journal >Development of global correlation models between in situ stress-normalized shear wave velocity and soil unit weight for plastic soils
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Development of global correlation models between in situ stress-normalized shear wave velocity and soil unit weight for plastic soils

机译:塑性土原位应力归一化剪切波速度与土单位重量全局相关模型的建立

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摘要

Shear wave velocity (V-s) in geo-materials is strongly dependent on factors such as stress state, void ratio, and soil structure. Stress-dependency and void-ratio dependency can be represented by the equations V-s = alpha(sigma(c)')(beta) and V-s = a(e)(b) (where alpha and a are material constants; exponents beta and b represent the sensitivity of stress and the void dependent effect, respectively; sigma(c)' is effective confining stress; e is void ratio), respectively. To consider the effect of soil disturbance and stress relief in geomaterials, shear wave velocity is often required to be normalized by adopting the site-specific model parameters (beta or b). Based on a special in situ database compiled from 156 well-documented test sites that include various geo-materials, this study presents (i) the apparent relationships of the model parameters alpha and beta for all soil and rock materials as well as a and b for all soil materials, (ii) new global correlations between soil unit weight and two types of stress-normalized shear wave velocities (V-s1 and V-sn), instead of the conventional V-s - soil unit weight relationship for clays, and (iii) the best-fitted multi-regression models between soil unit weight and site-specifically normalized shear wave velocity as well as the plasticity index for plastic soils. Moreover, this study presents the importance of site-specific stress normalization (V-sn) in creating a better correlation model. The proposed relationships offer first-order assessments of soil unit weight within the ranges of available data, which are also approximately guided by a hyperbolic unit weight model with depth.
机译:岩土材料中的剪切波速度(V-s)很大程度上取决于应力状态,孔隙率和土壤结构等因素。应力相关性和空隙率相关性可以由等式Vs = alpha(sigma(c)')β和Vs = a(e)(b)表示(其中alpha和a是材料常数;指数beta和b分别表示应力的敏感性和与空隙有关的效应; sigma(c)'是有效的约束应力; e是空隙比)。为了考虑土壤扰动和应力释放对土工材料的影响,通常需要通过采用特定于现场的模型参数(β或b)对剪切波速度进行归一化。基于从156个有据可查的测试地点编译而成的特殊的现场数据库,其中包括各种地质材料,该研究提出(i)所有土壤和岩石材料以及a和b的模型参数alpha和beta的表观关系。对于所有土壤材料,(ii)土壤单位重量与两种类型的应力归一化剪切波速度(V-s1和V-sn)之间的新的全局相关性,而不是传统的Vs-粘土的土壤单位重量关系,以及( iii)在土壤单位重量和特定位置的标准化剪切波速度以及塑性土壤的可塑性指标之间的最佳拟合多元回归模型。此外,这项研究提出了在创建更好的相关模型中,特定于地点的应力归一化(V-sn)的重要性。所提出的关系提供了在可用数据范围内的土壤单位重量的一阶评估,这些评估也大致由具有深度的双曲线单位重量模型指导。

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