Janardhana Prasanth Gunupuram, Rakesh Kumar, D. Deb
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引用次数: 0
摘要
矿山覆盖层的土石混合体形成非均质排土场边坡,其稳定性取决于其抗剪强度特性。本研究在现场和实验室条件下研究了SRM的抗剪强度特性和变形特征。采用新研制的大型直剪仪(60 cm × 60 cm × 30 cm)对SRM试样进行了12次原位试验。测定了SRM的原位湿密度和含水率。在实验室中进行了粒度分布来表征SRM。随着时间的推移,由于压实程度高,底部台架的黏聚力最高(64 kPa),而其他台架的黏聚力值保持一致(25 kPa至33 kPa)。与现场条件相比,实验室估计的黏聚力值较高。进一步观察到,对于原位试样,湿密度显著影响SRM的黏聚力,湿密度每增加1 %,黏聚力降低3 ~ 5 %。在原位条件下,内摩擦角是实验室值的1.5 ~ 1.7倍,这是由于SRM中存在较大尺寸的颗粒。研究结果对岩土工程师进行边坡设计和数值模拟具有重要的参考价值。
Determination of shear strength parameters of in-situ soil rock mixtures using large scale shear apparatus and comparison with laboratory tested samples
Soil-rock mixtures (SRM) from mine overburden form heterogeneous dump slopes, whose stability relies on their shear strength properties. This study investigates the shear strength properties and deformation characteristics of SRM in both in-situ and laboratory conditions. Total twelve in-situ tests were conducted on SRM samples with a newly developed large scale direct shear apparatus (60 cm × 60 cm × 30 cm). The in-situ moist density and moisture content of SRM are determined. Particle size distribution is performed to characterize the SRM in laboratory. The bottom bench has the highest cohesion (64 kPa) due to high compaction over time while the other benches have consistent cohesion values (25 kPa to33 kPa). The laboratory estimated cohesion values are high compared to in-situ condition. It is further observed that for in-situ samples, the moist density notably affects the cohesion of SRM, with cohesion decreasing by 3 to 5 % for every 1 % increase in moist density. At in-situ condition, internal friction angles are found to be 1.5 to 1.7 times compared to laboratory values which is due to the presence of the bigger sized particles in the SRM. The outcomes of the research are very informative and useful for geotechnical engineers for slope designing and numerical modeling purpose.
期刊介绍:
Engineering Geology, an international interdisciplinary journal, serves as a bridge between earth sciences and engineering, focusing on geological and geotechnical engineering. It welcomes studies with relevance to engineering, environmental concerns, and safety, catering to engineering geologists with backgrounds in geology or civil/mining engineering. Topics include applied geomorphology, structural geology, geophysics, geochemistry, environmental geology, hydrogeology, land use planning, natural hazards, remote sensing, soil and rock mechanics, and applied geotechnical engineering. The journal provides a platform for research at the intersection of geology and engineering disciplines.