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Research on Structure Optimization and Measurement Method of a Large-Range Deep Displacement 3D Measuring Sensor

Deep displacement monitoring of rock and soil mass is the focus of current geological hazard research. In the previous works, we proposed a geophysical deep displacement characteristic information detection method by implanting magneto-electric sensing arrays in boreholes, and preliminarily designed...

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Autores principales: Shentu, Nanying, Wang, Sheng, Li, Qing, Tong, Renyuan, An, Siguang, Qiu, Guohua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7146746/
https://www.ncbi.nlm.nih.gov/pubmed/32197396
http://dx.doi.org/10.3390/s20061689
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author Shentu, Nanying
Wang, Sheng
Li, Qing
Tong, Renyuan
An, Siguang
Qiu, Guohua
author_facet Shentu, Nanying
Wang, Sheng
Li, Qing
Tong, Renyuan
An, Siguang
Qiu, Guohua
author_sort Shentu, Nanying
collection PubMed
description Deep displacement monitoring of rock and soil mass is the focus of current geological hazard research. In the previous works, we proposed a geophysical deep displacement characteristic information detection method by implanting magneto-electric sensing arrays in boreholes, and preliminarily designed the sensor prototype and algorithm of deep displacement three-dimensional (3D) measurement. On this basis, we optimized the structure of the sensing unit through 3D printing and other technologies, and improved the shape and material parameters of the permanent magnet after extensive experiments. Through in-depth analysis of the experimental data, based on the data query algorithm and the polynomial least square curve fitting theory, a new mathematical model for 3D measurement of deep displacement has been proposed. By virtue of it, the output values of mutual inductance voltage, Hall voltage and tilt measuring voltage measured by the sensing units can be converted into the variations of relative horizontal displacement, vertical displacement and axial tilt angle between any two adjacent sensing units in real time, and the measuring errors of horizontal and vertical displacement are tested to be 0–1.5 mm. The combination of structural optimization and measurement method upgrading extends the measurement range of the sensing unit from 0–30 mm to 0–50 mm. It shows that our revised deep displacement 3D measuring sensor can better meet the needs of high-precision monitoring at the initial stage of rock and soil deformation and large deformation monitoring at the rapid change and imminent-sliding stage.
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spelling pubmed-71467462020-04-20 Research on Structure Optimization and Measurement Method of a Large-Range Deep Displacement 3D Measuring Sensor Shentu, Nanying Wang, Sheng Li, Qing Tong, Renyuan An, Siguang Qiu, Guohua Sensors (Basel) Article Deep displacement monitoring of rock and soil mass is the focus of current geological hazard research. In the previous works, we proposed a geophysical deep displacement characteristic information detection method by implanting magneto-electric sensing arrays in boreholes, and preliminarily designed the sensor prototype and algorithm of deep displacement three-dimensional (3D) measurement. On this basis, we optimized the structure of the sensing unit through 3D printing and other technologies, and improved the shape and material parameters of the permanent magnet after extensive experiments. Through in-depth analysis of the experimental data, based on the data query algorithm and the polynomial least square curve fitting theory, a new mathematical model for 3D measurement of deep displacement has been proposed. By virtue of it, the output values of mutual inductance voltage, Hall voltage and tilt measuring voltage measured by the sensing units can be converted into the variations of relative horizontal displacement, vertical displacement and axial tilt angle between any two adjacent sensing units in real time, and the measuring errors of horizontal and vertical displacement are tested to be 0–1.5 mm. The combination of structural optimization and measurement method upgrading extends the measurement range of the sensing unit from 0–30 mm to 0–50 mm. It shows that our revised deep displacement 3D measuring sensor can better meet the needs of high-precision monitoring at the initial stage of rock and soil deformation and large deformation monitoring at the rapid change and imminent-sliding stage. MDPI 2020-03-18 /pmc/articles/PMC7146746/ /pubmed/32197396 http://dx.doi.org/10.3390/s20061689 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Shentu, Nanying
Wang, Sheng
Li, Qing
Tong, Renyuan
An, Siguang
Qiu, Guohua
Research on Structure Optimization and Measurement Method of a Large-Range Deep Displacement 3D Measuring Sensor
title Research on Structure Optimization and Measurement Method of a Large-Range Deep Displacement 3D Measuring Sensor
title_full Research on Structure Optimization and Measurement Method of a Large-Range Deep Displacement 3D Measuring Sensor
title_fullStr Research on Structure Optimization and Measurement Method of a Large-Range Deep Displacement 3D Measuring Sensor
title_full_unstemmed Research on Structure Optimization and Measurement Method of a Large-Range Deep Displacement 3D Measuring Sensor
title_short Research on Structure Optimization and Measurement Method of a Large-Range Deep Displacement 3D Measuring Sensor
title_sort research on structure optimization and measurement method of a large-range deep displacement 3d measuring sensor
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7146746/
https://www.ncbi.nlm.nih.gov/pubmed/32197396
http://dx.doi.org/10.3390/s20061689
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