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Experimental Study of Leakage Monitoring of Diaphragm Walls Based on Distributed Optical Fiber Temperature Measurement Technology

机译:基于分布式光纤温度测量技术的隔膜壁泄漏监测试验研究

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摘要

In geotechnical engineering seepage of diaphragm walls is an important issue which may cause engineering disasters. It is therefore of great significance to develop reliable monitoring technology to monitor the leakage. The purpose of this study is to explore the application of a distributed optical fiber temperature measurement system in leakage monitoring of underground diaphragm walls using 1 g model tests. The principles of seepage monitoring based on distributed optical fiber temperature measurement technology are introduced. Fiber with heating cable was laid along the wall to control seepage flow at different speeds. The temperature rise of the fiber during seepage was also recorded under different heating power conditions. In particular the effect of single variables (seepage velocity and heating power) on the temperature rise of optical fibers was discussed. Test results indicated that the temperature difference between the seepage and non-seepage parts of diaphragm wall can be monitored well using fiber-optic external heating cable. Higher heating power also can improve the resolution of fiber-optic seepage. The seepage velocity had a linear relationship with the final stable temperature after heating, and the linear correlation coefficient increases with the increase of heating power. The stable temperature decreased with the increase of flow velocity. The findings provide a basis for quantitative measurement and precise location of seepage velocity of diaphragm walls.
机译:在岩土工程中,隔膜墙渗漏是一个可能导致工程灾害的重要问题。因此,开发可靠的监控技术来监测泄漏是具有重要意义。本研究的目的是探讨分布式光纤温度测量系统在地下隔膜墙泄漏监测中使用1g模型试验。介绍了基于分布式光纤温度测量技术的渗流监测原理。具有加热电缆的纤维沿墙壁放置,以控制不同速度的渗流。在不同的加热功率条件下还记录了渗漏期间纤维的温度升高。特别地,讨论了单个变量(渗流速度和加热功率)对光纤温度升高的影响。测试结果表明,使用光纤外部加热电缆,可以监测光圈壁的渗流和非渗流部分之间的温差。更高的加热功率也可以改善光纤渗流的分辨率。渗流速度与加热后的最终稳定温度具有线性关系,并且线性相关系数随着加热功率的增加而增加。随着流速的增加,稳定的温度降低。该研究结果为隔膜壁的渗流速度的定量测量和精确定位提供了基础。

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