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首页> 外文期刊>Journal of geotechnical and geoenvironmental engineering >Effect of Gradation and Particle Shape on the Limiting Compression Curves of Sand-Sized Siliceous Materials
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Effect of Gradation and Particle Shape on the Limiting Compression Curves of Sand-Sized Siliceous Materials

机译:灰度和颗粒形状对砂尺寸硅质材料限制压缩曲线的影响

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摘要

The compressive behavior of soils at stresses high enough to induce particle breakage is relevant to several geotechnical applications. At these high stresses, compression curves become independent of initial density and define a limiting compression curve (LCC) that follows a power law and depends on particle characteristics. This study focuses on the effect of the particle size distribution (PSD) and particle shape on the LCC. Eleven siliceous, sand-sized mixtures were subjected to one-dimensional compression tests at vertical effective stresses ranging from 10 to 190 MPa. Because particle size affects breakage characteristics, all mixtures had a median particle size of 0.6 mm. This enabled a clear distinction between PSD and particle shape effects while minimizing particle size effects that may obscure trends. There is a direct and linear correlation between the slope and reference stress of the LCC that was previously unknown. Particle shape and PSD significantly affect particle breakage. Particle shape was the single most important predictor of the three parameters that define an LCC: slope, reference stress, and the merging stress at which the LCC begins.
机译:在足够高以诱导颗粒破裂的压力下的土壤的压缩行为与若干岩土应用相关。在这些高应力下,压缩曲线与初始密度无关,并限定遵循电力法的限制压缩曲线(LCC),并取决于颗粒特性。该研究侧重于粒度分布(PSD)和颗粒形状对LCC的影响。在垂直有效应力下对10至190MPa的垂直有效应力进行一维压缩试验。由于粒径影响破损特性,所以所有混合物的中值粒径为0.6mm。这使得PSD和粒子形状效应之间的清晰区别,同时最小化可能模糊趋势的粒度效应。在先前未知的LCC的斜率和参考应力之间存在直接和线性相关性。颗粒形状和PSD显着影响颗粒破损。粒子形状是定义LCC:斜率,参考应力的三个参数的单个最重要的预测因子,以及LCC开始的合并应力。

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  • 来源
    《Journal of geotechnical and geoenvironmental engineering》 |2021年第7期|06021007.1-06021007.7|共7页
  • 作者单位

    School of Civil and Environmental Engineering Univ. of the Witwatersrand Johannesburg Gauteng 2000 South Africa;

    School of Civil and Environmental Engineering Univ. of the Witwatersrand Johannesburg Gauteng 2000 South Africa;

    Geotechnical Engineering Dept. Jones & Wagener (PTY) LTD 59 Bevan Rd. Sandton Johannesburg Gauteng 2191 South Africa;

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