Cargando…

A Theoretical Model to Predict Both Horizontal Displacement and Vertical Displacement for Electromagnetic Induction-Based Deep Displacement Sensors

Deep displacement observation is one basic means of landslide dynamic study and early warning monitoring and a key part of engineering geological investigation. In our previous work, we proposed a novel electromagnetic induction-based deep displacement sensor (I-type) to predict deep horizontal disp...

Descripción completa

Detalles Bibliográficos
Autores principales: Shentu, Nanying, Zhang, Hongjian, Li, Qing, Zhou, Hongliang, Tong, Renyuan, Li, Xiong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Molecular Diversity Preservation International (MDPI) 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3279211/
https://www.ncbi.nlm.nih.gov/pubmed/22368467
http://dx.doi.org/10.3390/s120100233
_version_ 1782223644087287808
author Shentu, Nanying
Zhang, Hongjian
Li, Qing
Zhou, Hongliang
Tong, Renyuan
Li, Xiong
author_facet Shentu, Nanying
Zhang, Hongjian
Li, Qing
Zhou, Hongliang
Tong, Renyuan
Li, Xiong
author_sort Shentu, Nanying
collection PubMed
description Deep displacement observation is one basic means of landslide dynamic study and early warning monitoring and a key part of engineering geological investigation. In our previous work, we proposed a novel electromagnetic induction-based deep displacement sensor (I-type) to predict deep horizontal displacement and a theoretical model called equation-based equivalent loop approach (EELA) to describe its sensing characters. However in many landslide and related geological engineering cases, both horizontal displacement and vertical displacement vary apparently and dynamically so both may require monitoring. In this study, a II-type deep displacement sensor is designed by revising our I-type sensor to simultaneously monitor the deep horizontal displacement and vertical displacement variations at different depths within a sliding mass. Meanwhile, a new theoretical modeling called the numerical integration-based equivalent loop approach (NIELA) has been proposed to quantitatively depict II-type sensors’ mutual inductance properties with respect to predicted horizontal displacements and vertical displacements. After detailed examinations and comparative studies between measured mutual inductance voltage, NIELA-based mutual inductance and EELA-based mutual inductance, NIELA has verified to be an effective and quite accurate analytic model for characterization of II-type sensors. The NIELA model is widely applicable for II-type sensors’ monitoring on all kinds of landslides and other related geohazards with satisfactory estimation accuracy and calculation efficiency.
format Online
Article
Text
id pubmed-3279211
institution National Center for Biotechnology Information
language English
publishDate 2011
publisher Molecular Diversity Preservation International (MDPI)
record_format MEDLINE/PubMed
spelling pubmed-32792112012-02-24 A Theoretical Model to Predict Both Horizontal Displacement and Vertical Displacement for Electromagnetic Induction-Based Deep Displacement Sensors Shentu, Nanying Zhang, Hongjian Li, Qing Zhou, Hongliang Tong, Renyuan Li, Xiong Sensors (Basel) Article Deep displacement observation is one basic means of landslide dynamic study and early warning monitoring and a key part of engineering geological investigation. In our previous work, we proposed a novel electromagnetic induction-based deep displacement sensor (I-type) to predict deep horizontal displacement and a theoretical model called equation-based equivalent loop approach (EELA) to describe its sensing characters. However in many landslide and related geological engineering cases, both horizontal displacement and vertical displacement vary apparently and dynamically so both may require monitoring. In this study, a II-type deep displacement sensor is designed by revising our I-type sensor to simultaneously monitor the deep horizontal displacement and vertical displacement variations at different depths within a sliding mass. Meanwhile, a new theoretical modeling called the numerical integration-based equivalent loop approach (NIELA) has been proposed to quantitatively depict II-type sensors’ mutual inductance properties with respect to predicted horizontal displacements and vertical displacements. After detailed examinations and comparative studies between measured mutual inductance voltage, NIELA-based mutual inductance and EELA-based mutual inductance, NIELA has verified to be an effective and quite accurate analytic model for characterization of II-type sensors. The NIELA model is widely applicable for II-type sensors’ monitoring on all kinds of landslides and other related geohazards with satisfactory estimation accuracy and calculation efficiency. Molecular Diversity Preservation International (MDPI) 2011-12-28 /pmc/articles/PMC3279211/ /pubmed/22368467 http://dx.doi.org/10.3390/s120100233 Text en © 2012 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 license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Shentu, Nanying
Zhang, Hongjian
Li, Qing
Zhou, Hongliang
Tong, Renyuan
Li, Xiong
A Theoretical Model to Predict Both Horizontal Displacement and Vertical Displacement for Electromagnetic Induction-Based Deep Displacement Sensors
title A Theoretical Model to Predict Both Horizontal Displacement and Vertical Displacement for Electromagnetic Induction-Based Deep Displacement Sensors
title_full A Theoretical Model to Predict Both Horizontal Displacement and Vertical Displacement for Electromagnetic Induction-Based Deep Displacement Sensors
title_fullStr A Theoretical Model to Predict Both Horizontal Displacement and Vertical Displacement for Electromagnetic Induction-Based Deep Displacement Sensors
title_full_unstemmed A Theoretical Model to Predict Both Horizontal Displacement and Vertical Displacement for Electromagnetic Induction-Based Deep Displacement Sensors
title_short A Theoretical Model to Predict Both Horizontal Displacement and Vertical Displacement for Electromagnetic Induction-Based Deep Displacement Sensors
title_sort theoretical model to predict both horizontal displacement and vertical displacement for electromagnetic induction-based deep displacement sensors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3279211/
https://www.ncbi.nlm.nih.gov/pubmed/22368467
http://dx.doi.org/10.3390/s120100233
work_keys_str_mv AT shentunanying atheoreticalmodeltopredictbothhorizontaldisplacementandverticaldisplacementforelectromagneticinductionbaseddeepdisplacementsensors
AT zhanghongjian atheoreticalmodeltopredictbothhorizontaldisplacementandverticaldisplacementforelectromagneticinductionbaseddeepdisplacementsensors
AT liqing atheoreticalmodeltopredictbothhorizontaldisplacementandverticaldisplacementforelectromagneticinductionbaseddeepdisplacementsensors
AT zhouhongliang atheoreticalmodeltopredictbothhorizontaldisplacementandverticaldisplacementforelectromagneticinductionbaseddeepdisplacementsensors
AT tongrenyuan atheoreticalmodeltopredictbothhorizontaldisplacementandverticaldisplacementforelectromagneticinductionbaseddeepdisplacementsensors
AT lixiong atheoreticalmodeltopredictbothhorizontaldisplacementandverticaldisplacementforelectromagneticinductionbaseddeepdisplacementsensors
AT shentunanying theoreticalmodeltopredictbothhorizontaldisplacementandverticaldisplacementforelectromagneticinductionbaseddeepdisplacementsensors
AT zhanghongjian theoreticalmodeltopredictbothhorizontaldisplacementandverticaldisplacementforelectromagneticinductionbaseddeepdisplacementsensors
AT liqing theoreticalmodeltopredictbothhorizontaldisplacementandverticaldisplacementforelectromagneticinductionbaseddeepdisplacementsensors
AT zhouhongliang theoreticalmodeltopredictbothhorizontaldisplacementandverticaldisplacementforelectromagneticinductionbaseddeepdisplacementsensors
AT tongrenyuan theoreticalmodeltopredictbothhorizontaldisplacementandverticaldisplacementforelectromagneticinductionbaseddeepdisplacementsensors
AT lixiong theoreticalmodeltopredictbothhorizontaldisplacementandverticaldisplacementforelectromagneticinductionbaseddeepdisplacementsensors