砂的微观宏观力学行为对颗粒间特性的敏感性

IF 2.2 4区 工程技术 Q3 ENGINEERING, GEOLOGICAL Environmental geotechnics Pub Date : 2023-05-21 DOI:10.3390/geotechnics3020024
A. Momeni, K. Eshiet, Y. Sheng
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引用次数: 0

摘要

砂是一种颗粒材料,但在一些工程分析中被视为连续固体。在处理土工结构时,这种方法被证明是可以接受的,只要采用足够的安全系数,就不会有破坏的风险。然而,连续介质方法不能解释粒间力对砂的微观宏观行为的影响。考虑到沙子的离散性,可以使用离散元法(DEM)将其建模为颗粒材料。本文展示了理想砂粒之间的微观接触特性如何影响宏观力学行为,突出了土壤接近破坏时织物的发展。进行了30次DEM双轴试验,研究了理想砂粒间特性对砂粒宏观微观力学特性的敏感性。这些模拟的条件是相同的(如粒径分布、颗粒数量、半径扩大后的孔隙率、边界条件和加载速率)。研究了这些模拟的峰前、峰后和峰后行为对理想砂粒颗粒间特性的敏感性。在不同围压下进行了两次额外的DEM双轴试验,以验证用于本研究的合成材料的无粘结性。由于本研究使用二维DEM,因此讨论了假设平面应变或平面应力情况下解释结果的详细方法。这项研究强调了关键的粒子间特性和这些特性影响宏观力学行为的范围。结果表明:杨氏模量主要取决于法向接触刚度,峰值应力和内摩擦角很大程度上取决于颗粒间摩擦系数,而泊松比和颗粒砂的体积行为主要取决于剪切接触刚度。建立了颗粒间性能与杨氏模量、泊松比、内摩擦角等宏观力学参数之间的关系。从这些试验中获得的弹塑性参数在定性上与典型的中、密砂特性一致。
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The Sensitivity of Micro—Macro Mechanical Behaviour of Sand to the Inter-Particle Properties
Sand is a particulate material but is treated as a continuum solid in some engineering analyses. This approach is proven to be acceptable when dealing with geotechnical structures, provided an adequate factor of safety is applied so that there is no risk of failure. However, the continuum approach does not account for the effect of interparticle forces on the micro–macro behaviour of sand. Sand could be modelled as a particulate material using the discrete element method (DEM), taking into account its discrete nature. This paper shows how the microscopic contact properties between the idealised sand particles influence the macro-mechanical behaviour, highlighting the development of the fabric as the soil approaches failure. Thirty DEM biaxial tests were performed to study the sensitivity of the macro–micro mechanical properties of sand to the inter-particle properties of an idealised sand particle. The conditions of these simulations were the same (e.g., particle size distribution, number of particles, porosity after radius enlargement, boundary conditions, and rate of loading). The sensitivity of the pre-peak, peak, and post-peak behaviour of these simulations to the inter-particle properties of an idealised sand particle was studied. Two extra DEM biaxial tests under different confining pressures were performed to verify the cohesionless nature of the synthetic material used for this study. Since a two-dimensional DEM is used for this study, a detailed approach to interpret the results assuming either a plane strain or a plane stress situation was discussed. This study highlighted the critical inter-particle properties and the range over which these influence macro-mechanical behaviour. The results show that Young’s modulus is mainly dependent on the normal contact stiffness, and peak stress and the angle of internal friction are greatly dependent on the inter-particle coefficient of friction, while Poisson’s ratio and volumetric behaviour of particulate sand are dictated mainly by shear contact stiffness. A set of relationships were established between inter-particle properties and macro-machinal parameters such as Young’s modulus, Poisson’s ratio, and angle of internal friction. The elastoplastic parameters obtained from these tests are qualitatively in agreement with the typical medium and dense sand behaviour.
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来源期刊
Environmental geotechnics
Environmental geotechnics Environmental Science-Water Science and Technology
CiteScore
6.20
自引率
18.20%
发文量
53
期刊介绍: In 21st century living, engineers and researchers need to deal with growing problems related to climate change, oil and water storage, handling, storage and disposal of toxic and hazardous wastes, remediation of contaminated sites, sustainable development and energy derived from the ground. Environmental Geotechnics aims to disseminate knowledge and provides a fresh perspective regarding the basic concepts, theory, techniques and field applicability of innovative testing and analysis methodologies and engineering practices in geoenvironmental engineering. The journal''s Editor in Chief is a Member of the Committee on Publication Ethics. All relevant papers are carefully considered, vetted by a distinguished team of international experts and rapidly published. Full research papers, short communications and comprehensive review articles are published under the following broad subject categories: geochemistry and geohydrology, soil and rock physics, biological processes in soil, soil-atmosphere interaction, electrical, electromagnetic and thermal characteristics of porous media, waste management, utilization of wastes, multiphase science, landslide wasting, soil and water conservation, sensor development and applications, the impact of climatic changes on geoenvironmental, geothermal/ground-source energy, carbon sequestration, oil and gas extraction techniques, uncertainty, reliability and risk, monitoring and forensic geotechnics.
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