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http://thuvienso.vanlanguni.edu.vn/handle/Vanlang_TV/18413
Toàn bộ biểu ghi siêu dữ liệu
Trường DC | Giá trị | Ngôn ngữ |
---|---|---|
dc.contributor.author | Feng, Feisheng | - |
dc.contributor.author | Peng, Suping | - |
dc.contributor.author | Du, Wenfeng | - |
dc.contributor.author | He, Yunlan | - |
dc.contributor.author | Chong, Shan | - |
dc.date.accessioned | 2020-05-29T02:30:18Z | - |
dc.date.available | 2020-05-29T02:30:18Z | - |
dc.date.issued | 2018 | - |
dc.identifier.issn | 1687 - 8086 | - |
dc.identifier.other | BBKH1052 | - |
dc.identifier.uri | http://thuvienso.vanlanguni.edu.vn/handle/Vanlang_TV/18413 | - |
dc.description | "Hindawi Advances in Civil Engineering Volume 2018, Article ID 5920841, 11 pages https://doi.org/10.1155/2018/5920841" | vi |
dc.description.abstract | It is important to study the mechanism of water inrush on a seam floor by exploring the rules of permeability variations during rock deformation on the seam floor and in the course of fracturing as well as their responses to characteristics of the macromechanical environment such as mine ground pressure, engineering geology, and fluid mechanics. First, through the analysis of bearing pressure changes in the process of exploiting the working face, a mechanical model for the seam floor above the confined water is established. Based on the graphic data-processing software Mathcad, the computational process and methods for assessing the vertical, horizontal, and shear stresses are provided together with the corresponding variation curve of the rock stratum 5 m below the floor, covering the entire process from a position 120 m away from the working face to a position 280 m behind it. Second, the permeability coefficients of different lithologies are measured in the laboratory. For rock stratum 5 m below the floor, the corresponding external loading path is set up according to its actual stress. The actual dynamic stress environment of the rocks is simulated, and their permeability characteristics are studied. In addition, based on data fitting, the permeability coefficient variations in the mining process are determined for a rock stratum 5 m below the floor. Finally, in accordance with the permeability variation law of the floor of the working face, the seam floor is divided into six areas, namely, the compression and expansion zone, the bed separation and expansion zone, the pressure relief zone, the compression zone, the stable recovery zone, and the stability zone. Thus, the water-resisting performance of the floor can be expressed more objectively. | vi |
dc.language.iso | en | vi |
dc.publisher | Hindawi Limited | vi |
dc.subject | Coal mining | vi |
dc.subject | Theory | vi |
dc.subject | Engineering | vi |
dc.subject | Mechanics | vi |
dc.subject | Permeability | vi |
dc.subject | Hydraulics | vi |
dc.subject | Aquifer | vi |
dc.subject | Floor | vi |
dc.subject | Compression zone | vi |
dc.subject | Data processing | vi |
dc.subject | Shear stress | vi |
dc.title | The Assessment and Evolution of Water-Conducting Rules under the Influence of Mining-Induced Stress | vi |
dc.type | Other | vi |
Bộ sưu tập: | Bài báo_lưu trữ |
Các tập tin trong tài liệu này:
Tập tin | Mô tả | Kích thước | Định dạng | |
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BBKH1052_TCCN_ The Assessment and Evolution.pdf Giới hạn truy cập | The Assessment and Evolution of Water-Conducting Rules under the Influence of Mining-Induced Stress | 1.8 MB | Adobe PDF | Xem/Tải về Yêu cầu tài liệu |
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