Numerical Analysis and Experimental Study of Hard Roofs in Fully Mechanized Mining Faces under Sleeve Fracturing
Sudden falls of large-area hard roofs in a mined area release a large amount of elastic energy, generate dynamic loads, and cause disasters such as impact ground pressure and gas outbursts. To address these problems, in this study, the sleeve fracturing method (SFM) was applied to weaken a hard roof...
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doaj-09f83c7e6c41488982b72c351271a3912020-11-25T02:09:28ZengMDPI AGMinerals2075-163X2015-11-015475877710.3390/min5040523min5040523Numerical Analysis and Experimental Study of Hard Roofs in Fully Mechanized Mining Faces under Sleeve FracturingZhitao Zheng0Ying Xu1Desheng Li2Jianghui Dong3School of Civil Engineering and Architecture, Anhui University of Science and Technology, Huainan 232001, ChinaSchool of Civil Engineering and Architecture, Anhui University of Science and Technology, Huainan 232001, ChinaSchool of Civil Engineering and Architecture, Anhui University of Science and Technology, Huainan 232001, ChinaSchool of Natural and Built Environments, University of South Australia, Adelaide, SA 5095, AustraliaSudden falls of large-area hard roofs in a mined area release a large amount of elastic energy, generate dynamic loads, and cause disasters such as impact ground pressure and gas outbursts. To address these problems, in this study, the sleeve fracturing method (SFM) was applied to weaken a hard roof. The numerical simulation software FLAC3D was used to develop three models based on an analysis of the SFM working mechanism. These models were applied to an analysis of the fracturing effects of various factors such as the borehole diameter, hole spacing, and sleeve pressure. Finally, the results of a simulation were validated using experiments with similar models. Our research indicated the following: (1) The crack propagation directions in the models were affected by the maximum principal stress and hole spacing. When the borehole diameter was fixed, the fracturing pressure increased with increasing hole spacing. In contrast, when the fracturing pressure was fixed, the fracturing range increased with increasing borehole diameter; (2) The most ideal fracturing effect was found at a fracturing pressure of 17.6 MPa in the model with a borehole diameter of 40 mm and hole spacing of 400 mm. The results showed that it is possible to regulate the falls of hard roofs using the SFM. This research may provide a theoretical basis for controlling hard roofs in mining.http://www.mdpi.com/2075-163X/5/4/0523sleeve fracturing methodhard roofimpact ground pressuredeep mines |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Zhitao Zheng Ying Xu Desheng Li Jianghui Dong |
spellingShingle |
Zhitao Zheng Ying Xu Desheng Li Jianghui Dong Numerical Analysis and Experimental Study of Hard Roofs in Fully Mechanized Mining Faces under Sleeve Fracturing Minerals sleeve fracturing method hard roof impact ground pressure deep mines |
author_facet |
Zhitao Zheng Ying Xu Desheng Li Jianghui Dong |
author_sort |
Zhitao Zheng |
title |
Numerical Analysis and Experimental Study of Hard Roofs in Fully Mechanized Mining Faces under Sleeve Fracturing |
title_short |
Numerical Analysis and Experimental Study of Hard Roofs in Fully Mechanized Mining Faces under Sleeve Fracturing |
title_full |
Numerical Analysis and Experimental Study of Hard Roofs in Fully Mechanized Mining Faces under Sleeve Fracturing |
title_fullStr |
Numerical Analysis and Experimental Study of Hard Roofs in Fully Mechanized Mining Faces under Sleeve Fracturing |
title_full_unstemmed |
Numerical Analysis and Experimental Study of Hard Roofs in Fully Mechanized Mining Faces under Sleeve Fracturing |
title_sort |
numerical analysis and experimental study of hard roofs in fully mechanized mining faces under sleeve fracturing |
publisher |
MDPI AG |
series |
Minerals |
issn |
2075-163X |
publishDate |
2015-11-01 |
description |
Sudden falls of large-area hard roofs in a mined area release a large amount of elastic energy, generate dynamic loads, and cause disasters such as impact ground pressure and gas outbursts. To address these problems, in this study, the sleeve fracturing method (SFM) was applied to weaken a hard roof. The numerical simulation software FLAC3D was used to develop three models based on an analysis of the SFM working mechanism. These models were applied to an analysis of the fracturing effects of various factors such as the borehole diameter, hole spacing, and sleeve pressure. Finally, the results of a simulation were validated using experiments with similar models. Our research indicated the following: (1) The crack propagation directions in the models were affected by the maximum principal stress and hole spacing. When the borehole diameter was fixed, the fracturing pressure increased with increasing hole spacing. In contrast, when the fracturing pressure was fixed, the fracturing range increased with increasing borehole diameter; (2) The most ideal fracturing effect was found at a fracturing pressure of 17.6 MPa in the model with a borehole diameter of 40 mm and hole spacing of 400 mm. The results showed that it is possible to regulate the falls of hard roofs using the SFM. This research may provide a theoretical basis for controlling hard roofs in mining. |
topic |
sleeve fracturing method hard roof impact ground pressure deep mines |
url |
http://www.mdpi.com/2075-163X/5/4/0523 |
work_keys_str_mv |
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