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      KCI등재 SCIE SCOPUS

      Stress Distribution and Failure Characteristics for Workface Floor of a Tilted Coal Seam

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      https://www.riss.kr/link?id=A106333878

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      다국어 초록 (Multilingual Abstract)

      A mechanical model for the tilted workface floor along the tilted direction of coal seam was proposed. Stress expressions of an arbitrary point inside the tilted workface floor were deduced. Calculation formula for the maximum failure depth of the lat...

      A mechanical model for the tilted workface floor along the tilted direction of coal seam was proposed. Stress expressions of an arbitrary point inside the tilted workface floor were deduced. Calculation formula for the maximum failure depth of the lateral floor strata of the tilted workface was also deduced. Based on the Mohr-Coulomb yield criterion, the tilted workfacefloor’s stress distribution, and failure depth and shape were simulated by using FLAC3D software for different coal seam’s dip angles, buried depths, and workface widths. Results show that the concentration coefficient, the peak value and the distance between the peak position of the lateral abutment pressure and the roadway on both sides of the tilted workface decreases with the increases in coal seam’s dip angle. The vertical stress isoclines present a “spoon-shaped” distribution along the tilteddirection of workface. Both sides of the workface form “bubble-shaped” distribution shear stress and its peak value increases first and then decreases with the increases in coal seam’s dip angle and reaches maximum at 30°–35°. The tilted workface floor’s plastic failure zone presents a “spoon-shaped” distribution along the tilted direction of workface, which is large on the lower side and small on the upper side. The plastic zone’s failure depth increases first and then decreases with the increases in the dip angle of coal seam and reaches maximum at 30°.

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      참고문헌 (Reference)

      1 Weitao Liu, "倾斜煤层底板破坏深度主控制因素敏感性分析及底板突水危险性评判" Springer Science and Business Media LLC 37 (37): 636-648, 2018

      2 Zhao, Q. B., "Water burst mechanism of ‘divided period and section burst’ at deep coal seam floor in North China type coalfield mining area" 40 (40): 1601-1607, 2015

      3 Timoshenko, S. P., "Theory of plates and shells" McGraw-Hill Press 1959

      4 Shuyun Zhu, "The characteristics of deformation and failure of coal seam floor due to mining in Xinmi coal field in China" Springer Science and Business Media LLC 73 (73): 1151-1163, 2014

      5 Zhang, R., "Study on the failure depth of thick seam floor in deep mining" 38 (38): 67-72, 2013

      6 Lu, H. F., "Stress distribution and failure depths of layered rock mass of mining floor" 33 (33): 2030-2039, 2014

      7 Meng, X. R., "Stress distribution and damage mechanism of mining floor" 35 (35): 1832-1836, 2010

      8 Wang, L. G., "Stress distribution and damage law of mining floor" 30 (30): 317-322, 2013

      9 Shiliang Liu, "Stress Evolution Law and Failure Characteristics of Mining Floor Rock Mass above Confined Water" 대한토목학회 21 (21): 2665-2672, 2017

      10 Jiang, Y. D., "Similar simulation test for breakage law of working face floor in coal mining above aquifer" 30 (30): 1571-1577, 2011

      1 Weitao Liu, "倾斜煤层底板破坏深度主控制因素敏感性分析及底板突水危险性评判" Springer Science and Business Media LLC 37 (37): 636-648, 2018

      2 Zhao, Q. B., "Water burst mechanism of ‘divided period and section burst’ at deep coal seam floor in North China type coalfield mining area" 40 (40): 1601-1607, 2015

      3 Timoshenko, S. P., "Theory of plates and shells" McGraw-Hill Press 1959

      4 Shuyun Zhu, "The characteristics of deformation and failure of coal seam floor due to mining in Xinmi coal field in China" Springer Science and Business Media LLC 73 (73): 1151-1163, 2014

      5 Zhang, R., "Study on the failure depth of thick seam floor in deep mining" 38 (38): 67-72, 2013

      6 Lu, H. F., "Stress distribution and failure depths of layered rock mass of mining floor" 33 (33): 2030-2039, 2014

      7 Meng, X. R., "Stress distribution and damage mechanism of mining floor" 35 (35): 1832-1836, 2010

      8 Wang, L. G., "Stress distribution and damage law of mining floor" 30 (30): 317-322, 2013

      9 Shiliang Liu, "Stress Evolution Law and Failure Characteristics of Mining Floor Rock Mass above Confined Water" 대한토목학회 21 (21): 2665-2672, 2017

      10 Jiang, Y. D., "Similar simulation test for breakage law of working face floor in coal mining above aquifer" 30 (30): 1571-1577, 2011

      11 Liu, W. T., "Sensitivity analysis of controlling factors on failure depth of floor based on orthogonal experiment" 40 (40): 1995-2001, 2015

      12 Zhang, J. C., "Rock mass permeability and coal mine water inrush" Geological Publishing House 1997

      13 Yinlong Lu, "Numerical simulation of mining-induced fracture evolution and water flow in coal seam floor above a confined aquifer" Elsevier BV 67 : 157-171, 2015

      14 Sun, J., "Microseismic monitoring on the failure characteristics of an inclined coal seam floor" 32 (32): 1589-1595, 2011

      15 Xiao, F. K., "Laws of floor breaking in coal mining face and gas extraction application" 35 (35): 417-419, 2010

      16 Sun, J., "Instability mechanics criterion of inclined water-resisting key strata in coal seam floor" 39 (39): 2276-2285, 2014

      17 Li, J. H., "Influenceof mining height on coal seam floor failure depth" 40 (40): 303-310, 2015

      18 Y.L. Tan, "In situ investigations of failure zone of floor strata in mining close distance coal seams" Elsevier BV 47 (47): 865-870, 2010

      19 Huiyong Yin, "In situ dynamic monitoring of stress revolution with time and space under coal seam floor during longwall mining" Springer Science and Business Media LLC 75 (75): 1249-, 2016

      20 Chen, J. G., "Failure characteristics of floor under predssure inclined and extra thick coal seam in full-mechanized top coal caving faces" 35 (35): 3018-3023, 2016

      21 Sun, J., "Failure characteristics and water-inrush mechanism of an inclined coal seam floor" China University of Mining and Technology 2011

      22 Baoliang Zhang, "Experimental study on floor failure of coal mining above confined water" Springer Science and Business Media LLC 12 (12): 114-, 2019

      23 Shichuan Zhang, "Experimental simulation of water-inrush disaster from the floor of mine and its mechanism investigation" Springer Science and Business Media LLC 10 (10): 503-, 2017

      24 Shiliang Liu, "Early warning information evolution characteristics of water inrush from floor in underground coal mining" Springer Science and Business Media LLC 12 (12): 30-, 2019

      25 Zhang, W., "Determining the optimum gateway location for extremely close coal seams" 41 (41): 182-188, 2012

      26 Cheng, Y. H., "Control mechanism of rock burst in the floor of roadway driven along next goaf in thick coal seam with large obliquity angle in deep well" 2015 : 1-10, 2015

      27 Liu, W. T., "Calculation method and main factor sensitivity analysis of inclined coal floor damage depth" 42 (42): 849-859, 2017

      28 Feng, Q., "Analytic solution for stress and deformation of stope floor based on integral transform" 36 (36): 3482-3487, 2015

      29 Liu Xinjie, "Analysis on the floor stress distribution and roadway position in the close distance coal seams" Springer Science and Business Media LLC 9 (9): 83-, 2016

      30 Huiyong Yin, "A numerical simulation technique to study fault activation characteristics during mining between fault bundles" Springer Science and Business Media LLC 78 (78): 148-, 2019

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      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2010-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2008-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2005-05-27 학술지명변경 한글명 : 대한토목학회 영문논문집 -> KSCE Journal of Civil Engineering KCI등재
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      2004-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2002-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      2016 0.59 0.12 0.49
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      0.42 0.39 0.286 0.06
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