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Hydraulic conductivity and strength of foamed cement-stabilized marine clay

机译:泡沫水泥稳定的海洋粘土的水力传导率和强度

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摘要

In traditional soft ground improvement of cement stabilized columns, strength was paid more attention than hydraulic conductivity, but the latter can improve the settlement uniformity and long term safety. This study introduced the pore-making technology referring the foaming concrete/mortar in an attempt to improve the hydraulic conductivity of the stabilized marine clays. The flexible wall permeameter and unconfined compressive strength (UCS) tests were conducted to depict the macro behaviour, and then the mercury intrusion porosimetry (MIP) tests and scanning electron microscopy (SEM) tests were performed to clarify the micro-structures. The hydraulic conductivity of foamed cement-stabilized marine clay at a given cement ratio (20%-50%) and density (900-1400 kg/m(3)) was found to be approximately 100-1000 times of that of (cement stabilized) clays without foaming, whereas the strength decreased only by 2-4 times. Microstructure investigation indicated that the hydraulic conductivity of foamed cement-stabilized marine clays was mainly dominated by the macro pore volume (>1 mu m). Furthermore, a greater cement ratio and more active metakaolin additives enable developing an innovative material for columns that satisfy both the strength and hydraulic conductivity requirement. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在水泥稳定柱的传统软土地基改良中,强度比水力传导性受到更多关注,但后者可以改善沉降均匀性和长期安全性。这项研究引入了参考发泡混凝土/砂浆的造孔技术,以期提高稳定的海洋粘土的水力传导性。进行了挠性壁渗透仪和无侧限抗压强度(UCS)测试,以描绘宏观行为,然后进行了压汞法(MIP)和扫描电子显微镜(SEM)测试以阐明微观结构。在给定的水泥比率(20%-50%)和密度(900-1400 kg / m(3))下,发现泡沫水泥稳定的海洋黏土的水力传导率约为(水泥稳定的)的100-1000倍)粘土,不发泡,而强度仅下降2-4倍。微观结构研究表明,泡沫水泥稳定的海洋粘土的水力传导率主要由大孔体积(> 1微米)决定。此外,更高的水泥比和更活泼的偏高岭土添加剂使得能够开发出既满足强度又满足水力传导性要求的创新型材料。 (C)2019 Elsevier Ltd.保留所有权利。

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