土工合成围护刚度对GESC复合地基抗剪配筋效果影响的振动台试验

IF 4.7 1区 工程技术 Q1 ENGINEERING, GEOLOGICAL
Mingchang Ji, Yi Zhao, Fuxiu Li, Yewei Zheng
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引用次数: 0

摘要

采用振动台试验方法,对两种不同土工合成围护刚度的GESC复合地基模型进行了振动台试验研究,探讨了围护刚度对土体抗剪加固效果的影响。根据相似关系,将模型几何形状、土工合成材料包裹体刚度和1 g引力场下的输入运动进行缩尺,设计了缩小尺度的GESC复合材料基础模型。采用差级配砂、砾石和土工布包裹体构建GESC复合地基模型,然后使用一系列峰值加速度增加的正弦输入运动进行激励。由于复合地基刚度的增加,较高土工合成围护刚度的GESC复合地基模型的加速度放大系数大于较低土工合成围护刚度模型的加速度放大系数。在相同的输入运动条件下,高围护刚度复合地基比低围护刚度复合地基具有更小的沉降和侧向位移。两种模型的增量土工合成包壳拉伸应变随输入加速度的增加而增加。土工合成围护体的纵向拉伸效应对土工合成围护体的剪切加固机制起着重要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Shaking table tests on the influence of geosynthetic encasement stiffness on the shear reinforcement effect of GESC composite foundation

This paper presents an experimental study of shaking table tests on two geosynthetic encased stone columns (GESC) composite foundation models with different geosynthetic encasement stiffness to investigate the influence of geosynthetic encasement stiffness on the shear reinforcement effect. The reduced-scale GESC composite foundation models were designed according to the similitude relationships by scaling the model geometry, geosynthetic encasement stiffness, and input motions for shaking table tests in a 1 g gravitational field. The GESC composite foundation models were constructed using poorly graded sand, gravel, and geotextile encasement, and then were excited using a series of sinusoidal input motions with increasing peak acceleration. The acceleration amplification factors for the GESC composite foundation model with higher geosynthetic encasement stiffness are larger than those of the lower geosynthetic encasement stiffness model due to the increased stiffness of the composite foundation. The higher geosynthetic encasement stiffness composite foundation has smaller settlements and lateral displacements under the same input motions compared to the lower geosynthetic encasement stiffness composite foundation. The incremental geosynthetic encasement tensile strains increase with increasing input acceleration for both models. The longitudinal tensile effect of geosynthetic encasement plays an important role on the shear reinforcement mechanism of GESC.

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来源期刊
Geotextiles and Geomembranes
Geotextiles and Geomembranes 地学-地球科学综合
CiteScore
9.50
自引率
21.20%
发文量
111
审稿时长
59 days
期刊介绍: The range of products and their applications has expanded rapidly over the last decade with geotextiles and geomembranes being specified world wide. This rapid growth is paralleled by a virtual explosion of technology. Current reference books and even manufacturers' sponsored publications tend to date very quickly and the need for a vehicle to bring together and discuss the growing body of technology now available has become evident. Geotextiles and Geomembranes fills this need and provides a forum for the dissemination of information amongst research workers, designers, users and manufacturers. By providing a growing fund of information the journal increases general awareness, prompts further research and assists in the establishment of international codes and regulations.
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