The analysis of pile-pile cap behavior under static loading test using distributed fiber optic sensor

Tanti Muliati, P. Rahardjo, B. W. Anggoro, Ricky Setiawan
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Abstract

Pile-Pile cap behavior was investigated in this study through the utilization of fiber optic sensors to continuously transmit information along the bored pile at a reading interval of 40 mm during each cycle of the static loading test. It is important to note that the fiber optic cables were installed on the two sides of the bored pile connected up to the pile cap to monitor the stress distribution beneath the pile cap while fiber optic sensors were installed under the pile cap. The ultimate axial bearing capacity expected to be achieved using the pile-pile cap configuration was 190 tons x 250% but failure occurred when the load used was increased to 190% of the design load. Therefore, the strain measurement obtained from the Distributed Fiber Optic Sensor Technology was analyzed to obtain information on the load transfer, pile shortening, mobilized unit skin friction, and mobilized end bearing at the pile-pile cap. The load portion carried out by pile cap was approximated at 6% to 23% from the actual top load applied. It was also discovered that the fiber optic sensors initially installed were able to record the strain caused to the soil by the load on the pile cap. The strain measurements on the soil made the zone of influence due to the loading of the foundation to reach two times the length of the pile while the biggest zone of influence lies at the end of the foundation. From recorded strain, show higher strain from one side compared to the other, this may indicate eccentricity of the load.
用分布式光纤传感器分析静载试验下桩承台的性能
本研究采用光纤传感器,在静载试验的每一个周期中,以40mm的读取间隔沿钻孔桩连续传输信息,研究桩承台行为。值得注意的是,光纤电缆安装在与承台相连的钻孔桩的两侧,以监测承台下的应力分布,同时光纤传感器安装在承台下。使用桩-桩承台配置预期达到的极限轴向承载力为190吨× 250%,但当使用的载荷增加到设计载荷的190%时发生故障。因此,对分布式光纤传感器技术获得的应变测量结果进行分析,获得桩承台处荷载传递、桩短、动员单元摩阻、动员端承等信息。桩承台承担的荷载部分近似为实际顶荷载的6% ~ 23%。研究还发现,最初安装的光纤传感器能够记录桩帽荷载对土体造成的应变。对土体的应变测量使得基础荷载的影响区达到桩长的两倍,而最大的影响区位于基础末端。从记录的应变,显示高应变从一边比另一边,这可能表明偏心负载。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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