首页|砂土压缩变形传感光缆耦合试验分析与预测模型研究

砂土压缩变形传感光缆耦合试验分析与预测模型研究

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灾害监测、预测是地质与岩土工程领域一项极为重要的任务.分布式光纤传感技术凭借其连续、实时、抗干扰、稳定性好等优点在长距离、长周期、高隐蔽性、强突发性的灾害监测中发挥了显著的作用.然而,针对不同工程问题,评价与解决传感光缆与被测岩土体协调变形问题,是精细化分析岩土体变形分布与研究演化规律的关键所在.利用自主研制的三维主动变形可控围压光缆-砂土耦合试验装置,探究了 0~4.0 MPa围压条件下金属基索传感光缆与粗砂介质压缩变形的协调性问题.试验结果表明:低围压条件下金属基索传感光缆与砂土压缩变形协调性较差,变形表现为非线性变化特征;随着围压增大,传感光缆与砂土耦合效果提高,变形呈现线性变化特征,当围压达到1.6 MPa后,两者协调变形一致性明显提高,其形变由非线性向线性转变.基于上述变形特性,提出了一种围压曲面投影数值模型,采用非扭结边界条件的样条插值算法对非试验数据实际位移进行预测,结果表明该模型具有较好的可靠性.试验研究认为金属基索光缆用于高围压条件下砂土变形测试具有更高的准确性,研究内容可以为分布式光纤传感测试技术用于深部地层变形监测提供科学的参考依据.
Analysis and prediction model of sensing fiber optic cable coupling test based on sand compression deformation
Disaster monitoring and prediction play significant roles in the fields of geology and geotechnical engineering.Distributed fiber optic sensing technology plays a significant role in long-distance,long-cycle,highly hidden,strong sudden disaster monitoring by virtue of its continuous,real-time,anti-interference,good stability and other advantages.However,effectively evaluating and addressing the coordination deformation issue between the sensing fiber optic cable and the measured rock and soil mass is crucial for different engineering problems.This coordination is essential for accurately analyzing deformation distribution and understanding the evolutionary patterns of rock and soil masses.In this paper,the development of a three-dimensional active deformation controllable confining pressure fiber-sand coupling test device is presented.The device aims to investigate the coordination between the metal base cable sensing fiber and the compression deformation of coarse sand medium under a confining pressure range of 0 to 4.0 MPa.Experimental results show that the metal base cable exhibits inadequate coordination with sand compression deformation at low confining pressures,displaying nonlinear deformation characteristics.However,as the confining pressure increases,the coupling effect between the sensor cable and the sand intensifies,resulting in linear deformation changes.Notably,when the confining pressure reaches 1.6 MPa,there is a significant enhancement in coordinated deformation,transitioning the deformation from nonlinear to linear behavior.Based on the aforementioned deformation characteristics,we propose a numerical model of confining surface projection.To predict the actual displacement of non-test data,we employ the spline interpolation algorithm with non-kink boundary conditions.The results demonstrate the reliability of the model.Furthermore,the experimental study highlights the higher accuracy of the metal base cable for sand deformation testing under high confining pressure conditions.The findings of this study serve as a scientific reference for the application of distributed optical fiber sensing technology in deep stratum deformation monitoring.

distributed optical fibergeotechnical deformationstrain transfercoordinated deformationnumerical model

许时昂、张平松、程刚、吴海波、张涛

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安徽理工大学地球与环境学院,安徽淮南 232001

合肥综合性国家科学中心能源研究院(安徽省能源实验室),安徽合肥 230051

华北科技学院计算机学院,北京 101601

合肥工业大学机械工程学院,安徽合肥 230009

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分布式光纤 岩土变形 应变传递 协调变形 数值模型

安徽省高校协同创新项目国家自然科学基金项目国家自然科学基金项目

GXXT-2021-0164187726842304159

2024

岩土力学
中国科学院武汉岩土力学研究所

岩土力学

CSTPCD北大核心
影响因子:1.614
ISSN:1000-7598
年,卷(期):2024.45(5)
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