含盐量和冻融条件对氯化物淤泥动态特性及其微观机理的影响

IF 3.8 2区 工程技术 Q1 ENGINEERING, CIVIL Cold Regions Science and Technology Pub Date : 2024-05-31 DOI:10.1016/j.coldregions.2024.104246
Yaqin Zhang, Ping Yang, Lin Li, Ting Zhang, Linliang Han
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引用次数: 0

摘要

一般情况下,在施工过程中采用人工地表冻结(AGF)技术来保证隧道安全。然而,冻融后土壤结构会发生明显变化,导致隧道在地铁振动的交通荷载作用下发生不均匀变形。要有效解决这一问题,必须同时考虑海洋软土必须承受的冻融、盐和交通荷载破坏的综合影响。为此,本研究对氯化钠溶液饱和的淤泥质粘土进行了循环三轴试验和核磁共振试验。研究深入探讨了冻融、含盐量和约束压力这三个主要因素对动态特性的影响。根据循环三轴试验,冻融后试样的滞后环形状随着加载循环次数的增加发生了更明显的变化。动态弹性模量因冻融而减弱,因添加氯化钠而提高。阻尼比与动态弹性模量规律一致。值得注意的是,不同的冻结温度(-10 °C、-20 °C和-30 °C)对动态弹性模量和阻尼比的影响很小。提出了预测海相软粘土动态弹性模量和阻尼比的数学模型。核磁共振测试表明,盐的加入使试样内部孔隙环境趋于一致,增强了水-固相互作用。孔隙率的增加导致动态弹性模量的降低。这些结果对应用 AGF 技术时海洋软粘土的力学特性提供了有价值的见解。
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Effects of Salt Content and Freeze-Thaw Conditions on Dynamic characteristics and its microscopic mechanism of Chloride Silty Clay

Generally, artificial ground freezing (AGF) technology is utilized to guarantee tunnel safety during construction. However, the soil structure changes significantly after freeze-thaw, resulting in uneven deformation of the tunnel under traffic loading from subway vibration. To solve this problem effectively, it is necessary to consider the combined impact of freeze-thaw, salt, and traffic loading damage that marine soft soil must withstand simultaneously. For this reason, cyclic triaxial test and NMR test were performed on the silty clay saturated with NaCl solution in this study. The influence of three main factors on dynamic properties has been thoroughly investigated, namely freeze-thaw, salt content, and confining pressure. According to cyclic triaxial test, the shape of the hysteresis loop of the specimens after freeze-thaw changed more significantly with increasing loading cycles. The dynamic elastic modulus was weakened by freeze-thaw, while improved by the addition of NaCl. Damping ratio was consistent with the dynamic elastic modulus law. It was worth noting that the different freezing temperatures (−10 °C, −20 °C and − 30 °C) had only a slight impact on dynamic elastic modulus, as well as damping ratio. Mathematical models were proposed to forecast the dynamic elastic modulus and damping ratio regarding marine soft clay. NMR test indicated that the addition of salt made the internal pore environment of the specimens tend to be consistent and enhanced the water-solid interaction. The increase in porosity resulted in the decrease in dynamic elastic modulus. The results have provided valuable insights into the mechanical characteristics of marine soft clay when AGF technology is applied.

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来源期刊
Cold Regions Science and Technology
Cold Regions Science and Technology 工程技术-地球科学综合
CiteScore
7.40
自引率
12.20%
发文量
209
审稿时长
4.9 months
期刊介绍: Cold Regions Science and Technology is an international journal dealing with the science and technical problems of cold environments in both the polar regions and more temperate locations. It includes fundamental aspects of cryospheric sciences which have applications for cold regions problems as well as engineering topics which relate to the cryosphere. Emphasis is given to applied science with broad coverage of the physical and mechanical aspects of ice (including glaciers and sea ice), snow and snow avalanches, ice-water systems, ice-bonded soils and permafrost. Relevant aspects of Earth science, materials science, offshore and river ice engineering are also of primary interest. These include icing of ships and structures as well as trafficability in cold environments. Technological advances for cold regions in research, development, and engineering practice are relevant to the journal. Theoretical papers must include a detailed discussion of the potential application of the theory to address cold regions problems. The journal serves a wide range of specialists, providing a medium for interdisciplinary communication and a convenient source of reference.
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