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Effects of grain size distribution on the initial strain shear modulus of calcareous sand

机译:粒度分布对钙质砂初始应变剪切模量的影响

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摘要

The soil’s small strain shear modulus, Gmax or G0, is applied in dynamic behavior analyses and is correlated to other soil properties (density and void ratio) for predicting soil dynamic behavior under seismic loadings such as earthquakes, machinery or traffic vibrations. However, for calcareous sands, selecting representative samples for the field conditions is difficu therefore, almost all measured soil parameters (post-seismic properties) do not reflect exactly the soil state before seismic loading. In some cases of dynamic loading, a change in grain size distribution (GSD) of soils, especially for calcareous sands might occur. Moreover, many of these sand types behave differently from silica sands owing to their mineralogy, particle characterization, soil skeleton, and the continuous changing of particle size. For this reason, a series of isotropic consolidation tests in ranges of confining pressure from 25 to 300 kPa as well as bender element measurements on a calcareous sand and on a reference silica sand were performed in this study. The effects of differences in gradation and in the type of material on the soil’s small strain shear modulus, Gmax, are discussed.
机译:将土壤的小应变剪切模量Gmax或G0用于动态行为分析,并将其与其他土壤特性(密度和空隙比)相关联,以预测在地震,机械或交通振动等地震载荷下的土壤动态行为。但是,对于钙质砂来说,很难为田间条件选择代表性的样品。因此,几乎所有测得的土壤参数(地震后性质)都无法准确反映地震荷载之前的土壤状态。在某些动态载荷情况下,土壤的粒度分布(GSD)可能会发生变化,尤其是对于钙质砂土。此外,由于其矿物学,颗粒特征,土壤骨架以及颗粒尺寸的不断变化,许多此类砂子的行为与硅砂不同。因此,在这项研究中,进行了一系列在25至300 kPa围压范围内的各向同性固结测试,以及在钙质砂和参考硅砂上进行弯曲元件测量。讨论了等级和材料类型的差异对土壤小应变剪切模量Gmax的影响。

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