Influence of the soil-structure interface on seepage characteristics in uniformly-grained soils: Microscopical insights from transparent soil experiments

IF 3.3 2区 工程技术 Q2 ENGINEERING, GEOLOGICAL
Guo Yu , Ying Cui , Lei He , Yubo Li , Huaiping Feng
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Abstract

Seepage failure of hydraulic structures is more likely at the soil-structure interface due to factors such as lower compaction and differing flow paths; however, detailed evidence is scarce. In this research, internal structures and flow velocities in uniformly-grained soils are successfully observed using transparent soil techniques. Experimental results showed that both porosity and flow velocity were highest at the interface. Significant variations in these parameters occurred within a range roughly equal to the average particle size from the interface, indicating that the interface effect is due to particle arrangement at the boundary, with minimal impact further away. Furthermore, three-dimensional modelling of flow paths based on flow velocities was conducted, and flow path distributions and their tortuosity were analyzed. The tortuosity at the interface was low (<1.2), and widely connected pores were observed. Fluid at the interface flowed upward along the two-dimensional plane, while within the soil, it meandered three-dimensionally along particle edges. In summary, this research revealed through microscopic observation using transparent soil that the pronounced flow at the boundary is due to the soil-structure interface having larger pores and straighter flow paths.
均匀颗粒土中土-结构界面对渗流特性的影响:透明土实验的微观观察
由于压实度低、流道不同等因素,水工构筑物在土-结构界面处更容易发生渗流破坏;然而,详细的证据很少。在本研究中,利用透明土技术成功地观察了均匀颗粒土的内部结构和流速。实验结果表明,界面处孔隙率和流速均最高。这些参数的显著变化发生在与界面平均粒径大致相等的范围内,表明界面效应是由边界处的颗粒排列引起的,对远处的影响最小。在此基础上,建立了基于流速的流道三维模型,分析了流道分布及其弯曲度。界面弯曲度较低(<1.2),孔隙连通较广。界面处的流体沿二维平面向上流动,而土壤内的流体则沿颗粒边缘三维弯曲流动。综上所述,本研究通过透明土的微观观察发现,边界处流动明显是由于土-结构界面孔隙较大、流道较直所致。
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来源期刊
Soils and Foundations
Soils and Foundations 工程技术-地球科学综合
CiteScore
6.40
自引率
8.10%
发文量
99
审稿时长
5 months
期刊介绍: Soils and Foundations is one of the leading journals in the field of soil mechanics and geotechnical engineering. It is the official journal of the Japanese Geotechnical Society (JGS)., The journal publishes a variety of original research paper, technical reports, technical notes, as well as the state-of-the-art reports upon invitation by the Editor, in the fields of soil and rock mechanics, geotechnical engineering, and environmental geotechnics. Since the publication of Volume 1, No.1 issue in June 1960, Soils and Foundations will celebrate the 60th anniversary in the year of 2020. Soils and Foundations welcomes theoretical as well as practical work associated with the aforementioned field(s). Case studies that describe the original and interdisciplinary work applicable to geotechnical engineering are particularly encouraged. Discussions to each of the published articles are also welcomed in order to provide an avenue in which opinions of peers may be fed back or exchanged. In providing latest expertise on a specific topic, one issue out of six per year on average was allocated to include selected papers from the International Symposia which were held in Japan as well as overseas.
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