Risk Assessment of Coal Floor Water Inrush from Underlying Aquifers Based on GRA–AHP and Its Application

被引:34
作者
Li B. [1 ,2 ]
Chen Y. [3 ]
机构
[1] Key Laboratory of Karst Environment and Geohazard Prevention, Ministry of Education, Guizhou University, Guiyang, 550000, Guizhou
[2] College of Resource and Environmental Engineering, Guizhou University, Guiyang, 550000, Guizhou
[3] Department of Civil Engineering, The University of Tokyo, Tokyo
基金
中国国家自然科学基金;
关键词
AHP; Coal seam; Evaluation; GRA; Ground water inrush;
D O I
10.1007/s10706-015-9935-z
中图分类号
学科分类号
摘要
Ground water inrush from underlying coal seam aquifers is a serious geohazard during coal mining in China. In order to effectively predict coal floor water inrush, the evaluation index system and evaluation standard for coal floor water inrush, containing quantitative indexes and qualitative indexes, is established on the base of conditions of aquifer and aquiclude, geologic structure and mining disturbance. Simultaneously, grey relational analysis and analytic hierarchy process are used to establish an evaluation model which efficiently overcomes the uncertainty between indexes of water inrush effects and really reflects the degree of importance for each index of water inrush effects. The model is applied to the typical working face of Yuzhou coalfield in the north of China to demonstrate the evaluation process. Compared to the water inrush coefficient method which is widely used for evaluating coal floor water inrush, the presented evaluation model in this paper accords more with the susceptibility of coal floor water inrush by multi-factor and is of nonlinear dynamic characteristics of highly complicated formation mechanism. This method offers a new tool in the assessment of ground water inrush in mine. © 2015, Springer International Publishing Switzerland.
引用
收藏
页码:143 / 154
页数:11
相关论文
共 22 条
[1]  
Bense V.F., Van D., Berg E.H., Deformation mechanisms and hydraulic properties of fault zones in unconsolidated sediments, Hydrogeol J, 11, 3, pp. 319-332, (2003)
[2]  
Bieniawski Z.T., Mechanism of brittle fracture of rock. Part2. Experimental studies, Int J Rock Mech Min Sci, 14, 1, pp. 407-423, (1967)
[3]  
Deng J.L., The relational space in grey system theory, Fuzzy Math, 2, pp. 1-10, (1985)
[4]  
Deng J.L., Introduction to grey system, J Grey Syst, 1, 1, pp. 1-24, (1989)
[5]  
Guan E.T., Origin of water bursting coefficient and process of modification, Coal Geol China, 24, 2, pp. 30-32, (2012)
[6]  
Jin D.W., Review on study of Pan-decision analysis theory of water inrush forecast through coal bottom layer in mining working face, J Jiaozuo Inst Technol (Nat Sci), 19, 4, pp. 246-248, (2000)
[7]  
Li B.Y., Down Three Zones” in the prediction of the water inrush from coalbed floor aquifer-theory, development and application, J Shandong Inst Min Technol (Nat Sci), 18, 4, pp. 11-18, (1999)
[8]  
Liu Q., A discussion on water inrush coefficient, Coal Geol Explor, 37, 4, pp. 34-38, (2009)
[9]  
Men H.L., Yang J.W., Liu C.A., Floor water irruption prediction of mining face above confined water, Saf Coal Mines, 43, 11, pp. 174-177, (2012)
[10]  
Qian M.G., Miao X.X., Xu J.L., Theoretical study of key stratum in ground control, J China Coal Soc, 21, 3, pp. 225-230, (1996)