An experimental study on applying spatial TDR to determine bentonite suspension penetration

IF 5.2 2区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY Measurement Pub Date : 2024-11-26 DOI:10.1016/j.measurement.2024.116310
Alexander Wiendl , Guanxi Yan , Alexander Scheuermann , Jochen Fillibeck , Roberto Cudmani
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Abstract

In slurry shield tunnelling, the penetration of the supporting bentonite suspension must be reduced to a critical value to ensure safety and cost-efficiency during construction. Aiming to measure bentonite suspension penetration, this study adopted the spatial time domain reflectometry (spatial TDR) technique. Although traditional TDR can detect point-wise changes in bentonite suspension concentration of pore fluid, this technique has rarely been extended to spatial profile detection. Spatioscale tests with a flat ribbon cable TDR sensor demonstrated the potential of TDR waveform analysis for determining penetration depth. Relationships between penetration depth and waveform characteristics were established. The travel time specified by the dual tangents method decreased with increasing slurry penetration, and the determined travel time agrees well with that calculated by a newly proposed mixture equation. This novel approach enables the determination of penetration depth without visual observation, providing a powerful measuring solution for laboratory studies and slurry shield tunnelling.

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应用空间 TDR 确定膨润土悬浮液渗透性的实验研究
在泥浆盾构隧道施工中,必须将支护膨润土悬浮液的渗透率降至临界值,以确保施工安全和成本效益。为了测量膨润土悬浮液的渗透率,本研究采用了空间时域反射仪(空间 TDR)技术。虽然传统的 TDR 可以检测孔隙流体中膨润土悬浮液浓度的点状变化,但这种技术很少被扩展到空间剖面检测。使用扁平带状电缆 TDR 传感器进行的空间尺度测试证明了 TDR 波形分析在确定渗透深度方面的潜力。确定了渗透深度与波形特征之间的关系。双切线法确定的行程时间随着泥浆渗透深度的增加而减少,确定的行程时间与新提出的混合方程计算的时间非常吻合。这种新方法无需目测即可确定渗透深度,为实验室研究和泥浆盾构隧道掘进提供了强大的测量解决方案。
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来源期刊
Measurement
Measurement 工程技术-工程:综合
CiteScore
10.20
自引率
12.50%
发文量
1589
审稿时长
12.1 months
期刊介绍: Contributions are invited on novel achievements in all fields of measurement and instrumentation science and technology. Authors are encouraged to submit novel material, whose ultimate goal is an advancement in the state of the art of: measurement and metrology fundamentals, sensors, measurement instruments, measurement and estimation techniques, measurement data processing and fusion algorithms, evaluation procedures and methodologies for plants and industrial processes, performance analysis of systems, processes and algorithms, mathematical models for measurement-oriented purposes, distributed measurement systems in a connected world.
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