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Performance monitoring of a glass fiber-reinforced polymer bar soil nail during laboratory pullout test using FBG sensing technology

机译:使用FBG传感技术的玻璃纤维增​​强聚合物棒土钉在实验室拉拔测试期间的性能监控

摘要

In this paper, the stress-strain state and the effectiveness of shear resistance of a glass fiber-reinforced polymer (GFRP) bar soil nail in a pullout test was studied in laboratory using fiber Bragg grating (FBG) sensing measurement. Both experimental study and numerical simulation were carried out and results are compared in this paper. In the pullout test, cement slurry was grouted into one predrilled borehole with a GFRP bar in a completely decomposed granite (CDG) soil mass, forming a cement-grouted GFRP bar soil nail. This GFRP bar soil nail was pulled out from the CDG soil mass in laboratory to investigate the performance of the GFRP bar soil nail during the pullout test process. Three loading cycles were applied to pull the GFRP bar soil nail out. Compared with traditional electricity-based strain gauges,FBGsensing technique is a relative novel technology to geotechnical structures health monitoring and has a number of advantages including high accuracy, multiplexing, electromagnetic interference resistance, and good repeatability. In the current study, one fiber line had a series of FBG strain sensors with a sequence of initial wavelengths. This fiber line with five FBG strain sensors was adhered on the pregrooved GFRP bar before grouting and was used to measure the strain distribution along thisGFRPbar with cement grout during a pullout test. The mechanical behavior of theGFRPbar soil nail is evaluated by using the measured strain results in the paper. It is found that the pullout results of theGFRPbar soil nail are in good agreement with numerical calculation results. Test results also show that theFBGsensors are reliable for measuring the strain variation at all measured points under different loading stages. Furthermore, a simplified pullout resistance model originally proposed for GFRP pipe soil nails was employed to examine the laboratory pullout results of a GFRP bar soil nail. It is found that the simplified pullout resistance model is also applicable for the GFRP bar soil nail.
机译:本文在实验室中使用光纤布拉格光栅(FBG)传感测量技术研究了玻璃纤维增​​强聚合物(GFRP)钢筋土钉在拉拔试验中的应力应变状态和抗剪效果。进行了实验研究和数值模拟,并对结果进行了比较。在拉拔试验中,将水泥浆在完全分解的花岗岩(CDG)土体中用GFRP棒浆灌浆到一个预先钻孔的钻孔中,形成水泥灌浆的GFRP棒土钉。在实验室中将这种GFRP筋土钉从CDG土块中拉出,以研究GFRP筋土钉在拉出测试过程中的性能。施加三个加载周期以将GFRP杆土钉拔出。与传统的基于电力的应变仪相比,FBG传感技术是岩土结构健康监测的一种相对较新的技术,具有许多优点,包括高精度,多路复用,抗电磁干扰性和良好的可重复性。在当前的研究中,一条光纤线具有一系列带有一系列初始波长的FBG应变传感器。在灌浆之前,将具有五个FBG应变传感器的光纤线粘贴到预先开槽的GFRP杆上,并在拉拔测试期间使用水泥浆将其用于测量沿着该GFRP杆的应变分布。 GFRPbar土钉的机械性能通过使用本文中测得的应变结果进行评估。结果表明,GFRPbar土钉的拔出结果与数值计算结果吻合良好。测试结果还表明,FBG传感器可可靠地测量不同载荷阶段下所有测量点的应变变化。此外,最初为GFRP管土钉提出的简化抗拔模型被用于检查GFRP棒土钉的实验室抗拔结果。发现简化的抗拔模型也适用于GFRP条形土钉。

著录项

  • 作者

    Pei H; Yin J; Zhu H; Hong C;

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  • 年度 2013
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  • 原文格式 PDF
  • 正文语种 eng
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