Porous Blasting Morphology and Resistivity Response Characteristics of Soft Coal Seam

The fracturing characteristics of multi-holes blasting in soft coal seam were analyzed quantitatively by using the multi-holes model blasting experiment of soft coal seam and digital image processing (DIP) and electrical resistivity tomography (ERT) techniques, and the electrical resistivity respons...

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Main Authors: Wenwang Yang, Sanlin He, Taotao Zhao, Chenying Ge
Format: Article
Language:English
Published: Hindawi Limited 2022-01-01
Series:Shock and Vibration
Online Access:http://dx.doi.org/10.1155/2022/2350955
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author Wenwang Yang
Sanlin He
Taotao Zhao
Chenying Ge
author_facet Wenwang Yang
Sanlin He
Taotao Zhao
Chenying Ge
author_sort Wenwang Yang
collection DOAJ
description The fracturing characteristics of multi-holes blasting in soft coal seam were analyzed quantitatively by using the multi-holes model blasting experiment of soft coal seam and digital image processing (DIP) and electrical resistivity tomography (ERT) techniques, and the electrical resistivity response rules before and after blasting were obtained. The results show the following: (1) At the same time as the formation of blasting-induced cracks, the coal inside the control hole presents two kinds of displacement phenomena: crack and noncrack, partially offsetting the extrusion effect caused by the expansion of the blasting hole. (2) The comprehensive value (S) of blasting-induced cracks, control hole, and blasting hole area change is proposed to analyze the blasting effect. When single-hole blasting is performed, S < 0, the fractal dimension change rate of coal seam crack is only 5%, the control area presents a compaction phenomenon, and the resistivity decreases by about 20%. When multi-hole blasting is performed, the blasting cracks are abundant and the coal displaces sufficiently. The fractal dimension of cracks reaches 21.28%, the negative effect of the blast holes cavity is offset (S > 0), and the resistivity in the controlled area generally increases by 1 to 30 times. (3) Compared with the single-hole blasting model, the multi-hole blasting is more in line with the coal mine site, and can effectively increase the permeability in the control area, and the resistivity generally increases.
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spelling doaj.art-5a68a012e6c14a7a9dad82d9cb4f30162022-12-22T04:03:08ZengHindawi LimitedShock and Vibration1875-92032022-01-01202210.1155/2022/2350955Porous Blasting Morphology and Resistivity Response Characteristics of Soft Coal SeamWenwang Yang0Sanlin He1Taotao Zhao2Chenying Ge3School of Safety Science and EngineeringHuman Resources OfficeBeijing Enterprises Water Group LimitedSchool of Safety Science and EngineeringThe fracturing characteristics of multi-holes blasting in soft coal seam were analyzed quantitatively by using the multi-holes model blasting experiment of soft coal seam and digital image processing (DIP) and electrical resistivity tomography (ERT) techniques, and the electrical resistivity response rules before and after blasting were obtained. The results show the following: (1) At the same time as the formation of blasting-induced cracks, the coal inside the control hole presents two kinds of displacement phenomena: crack and noncrack, partially offsetting the extrusion effect caused by the expansion of the blasting hole. (2) The comprehensive value (S) of blasting-induced cracks, control hole, and blasting hole area change is proposed to analyze the blasting effect. When single-hole blasting is performed, S < 0, the fractal dimension change rate of coal seam crack is only 5%, the control area presents a compaction phenomenon, and the resistivity decreases by about 20%. When multi-hole blasting is performed, the blasting cracks are abundant and the coal displaces sufficiently. The fractal dimension of cracks reaches 21.28%, the negative effect of the blast holes cavity is offset (S > 0), and the resistivity in the controlled area generally increases by 1 to 30 times. (3) Compared with the single-hole blasting model, the multi-hole blasting is more in line with the coal mine site, and can effectively increase the permeability in the control area, and the resistivity generally increases.http://dx.doi.org/10.1155/2022/2350955
spellingShingle Wenwang Yang
Sanlin He
Taotao Zhao
Chenying Ge
Porous Blasting Morphology and Resistivity Response Characteristics of Soft Coal Seam
Shock and Vibration
title Porous Blasting Morphology and Resistivity Response Characteristics of Soft Coal Seam
title_full Porous Blasting Morphology and Resistivity Response Characteristics of Soft Coal Seam
title_fullStr Porous Blasting Morphology and Resistivity Response Characteristics of Soft Coal Seam
title_full_unstemmed Porous Blasting Morphology and Resistivity Response Characteristics of Soft Coal Seam
title_short Porous Blasting Morphology and Resistivity Response Characteristics of Soft Coal Seam
title_sort porous blasting morphology and resistivity response characteristics of soft coal seam
url http://dx.doi.org/10.1155/2022/2350955
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AT sanlinhe porousblastingmorphologyandresistivityresponsecharacteristicsofsoftcoalseam
AT taotaozhao porousblastingmorphologyandresistivityresponsecharacteristicsofsoftcoalseam
AT chenyingge porousblastingmorphologyandresistivityresponsecharacteristicsofsoftcoalseam