A Study on Distribution Measurement and Mechanism of Deformation due to Water Loss of Overburden Layer in Vertical Shaft

Based on FBG fiber Bragg grating technology and BOTDA distributed optical fiber sensing technology, this study uses fine sand to simulate overburden layer in vertical shaft model equipment. It studies the placing technique and test method for optical fiber sensors in the overburden layer, combined w...

Full description

Bibliographic Details
Main Authors: Chunde Piao, Jun Yuan, Dangliang Wang, Pengtao Li
Format: Article
Language:English
Published: Hindawi Limited 2015-01-01
Series:Journal of Sensors
Online Access:http://dx.doi.org/10.1155/2015/531428
id doaj-08713a71bf7d459292bf7946c08b01c7
record_format Article
spelling doaj-08713a71bf7d459292bf7946c08b01c72020-11-24T22:28:51ZengHindawi LimitedJournal of Sensors1687-725X1687-72682015-01-01201510.1155/2015/531428531428A Study on Distribution Measurement and Mechanism of Deformation due to Water Loss of Overburden Layer in Vertical ShaftChunde Piao0Jun Yuan1Dangliang Wang2Pengtao Li3School of Resources and Geosciences, China University of Mining and Technology, Xuzhou, Jiangsu 221116, ChinaSchool of Resources and Geosciences, China University of Mining and Technology, Xuzhou, Jiangsu 221116, ChinaSchool of Resources and Geosciences, China University of Mining and Technology, Xuzhou, Jiangsu 221116, ChinaSchool of Resources and Geosciences, China University of Mining and Technology, Xuzhou, Jiangsu 221116, ChinaBased on FBG fiber Bragg grating technology and BOTDA distributed optical fiber sensing technology, this study uses fine sand to simulate overburden layer in vertical shaft model equipment. It studies the placing technique and test method for optical fiber sensors in the overburden layer, combined with MODFLOW software to simulate the change of the water head value when the overburden layer is losing water, and obtains the deformation features of overburden layer. The results show, at the beginning of water loss, the vertical deformation increases due to larger hydraulic pressure drop, while the deformation decreases gradually and tends to be stable with the hydraulic pressure drop reducing. The circumferential deformation is closely related to such factors as the distance between each drainage outlet, the variations of water head value, and the method of drainage. The monitoring result based on optical fiber sensing technology is consistent with the characteristics of water loss in overburden layer simulated by MODFLOW software, which shows that the optical fiber sensing technology applied to monitor shaft overburden layer is feasible.http://dx.doi.org/10.1155/2015/531428
collection DOAJ
language English
format Article
sources DOAJ
author Chunde Piao
Jun Yuan
Dangliang Wang
Pengtao Li
spellingShingle Chunde Piao
Jun Yuan
Dangliang Wang
Pengtao Li
A Study on Distribution Measurement and Mechanism of Deformation due to Water Loss of Overburden Layer in Vertical Shaft
Journal of Sensors
author_facet Chunde Piao
Jun Yuan
Dangliang Wang
Pengtao Li
author_sort Chunde Piao
title A Study on Distribution Measurement and Mechanism of Deformation due to Water Loss of Overburden Layer in Vertical Shaft
title_short A Study on Distribution Measurement and Mechanism of Deformation due to Water Loss of Overburden Layer in Vertical Shaft
title_full A Study on Distribution Measurement and Mechanism of Deformation due to Water Loss of Overburden Layer in Vertical Shaft
title_fullStr A Study on Distribution Measurement and Mechanism of Deformation due to Water Loss of Overburden Layer in Vertical Shaft
title_full_unstemmed A Study on Distribution Measurement and Mechanism of Deformation due to Water Loss of Overburden Layer in Vertical Shaft
title_sort study on distribution measurement and mechanism of deformation due to water loss of overburden layer in vertical shaft
publisher Hindawi Limited
series Journal of Sensors
issn 1687-725X
1687-7268
publishDate 2015-01-01
description Based on FBG fiber Bragg grating technology and BOTDA distributed optical fiber sensing technology, this study uses fine sand to simulate overburden layer in vertical shaft model equipment. It studies the placing technique and test method for optical fiber sensors in the overburden layer, combined with MODFLOW software to simulate the change of the water head value when the overburden layer is losing water, and obtains the deformation features of overburden layer. The results show, at the beginning of water loss, the vertical deformation increases due to larger hydraulic pressure drop, while the deformation decreases gradually and tends to be stable with the hydraulic pressure drop reducing. The circumferential deformation is closely related to such factors as the distance between each drainage outlet, the variations of water head value, and the method of drainage. The monitoring result based on optical fiber sensing technology is consistent with the characteristics of water loss in overburden layer simulated by MODFLOW software, which shows that the optical fiber sensing technology applied to monitor shaft overburden layer is feasible.
url http://dx.doi.org/10.1155/2015/531428
work_keys_str_mv AT chundepiao astudyondistributionmeasurementandmechanismofdeformationduetowaterlossofoverburdenlayerinverticalshaft
AT junyuan astudyondistributionmeasurementandmechanismofdeformationduetowaterlossofoverburdenlayerinverticalshaft
AT dangliangwang astudyondistributionmeasurementandmechanismofdeformationduetowaterlossofoverburdenlayerinverticalshaft
AT pengtaoli astudyondistributionmeasurementandmechanismofdeformationduetowaterlossofoverburdenlayerinverticalshaft
AT chundepiao studyondistributionmeasurementandmechanismofdeformationduetowaterlossofoverburdenlayerinverticalshaft
AT junyuan studyondistributionmeasurementandmechanismofdeformationduetowaterlossofoverburdenlayerinverticalshaft
AT dangliangwang studyondistributionmeasurementandmechanismofdeformationduetowaterlossofoverburdenlayerinverticalshaft
AT pengtaoli studyondistributionmeasurementandmechanismofdeformationduetowaterlossofoverburdenlayerinverticalshaft
_version_ 1725746092510806016