Instability mechanism and prevention technology of roadway in close distance and extra thick coal seam under goaf

被引:0
|
作者
Hao D. [1 ,2 ]
Wu Y. [1 ,2 ]
Chen H. [3 ]
Chu X. [1 ,2 ]
Li Y. [4 ]
机构
[1] Coal Mining and Designing Department, Tiandi Science and Technology Co., Ltd., Beijing
[2] State Key Laboratory of Coal Mining and Clean Utilization, Beijing
[3] Shanxi Shide Sunjiagou Coal Mine Co., Ltd., Xinzhou
[4] Faculty of Resources and Safety Engineering, China University of Mining & Technology (Beijing), Beijing
来源
关键词
Bolt support; Extra-thick coal seam; Goaf; Instability; Mining roadway;
D O I
10.13225/j.cnki.jccs.2019.0217
中图分类号
学科分类号
摘要
During the mining process of the close distance coal seams under goaf, mining roadway in the lower seam is affected by the coal pillars left over in the goaf of the upper seam and the adjacent working face's dynamic pressure.In view of the serious deformation and failure phenomenon of roof fall, the inward extrusion of two roadsides and floor heave in 13311 air return roadway of top coal caving face of the extra-thick coal seam of Sunjiagou coal mine, the field measurement, theoretical analysis and numerical simulation are adopted to study the mechanism of roadway's instability and the main influencing factors.The results show that the main factors affecting the deformation and instability of 13311 return air roadway include the driving under the influence of mining dynamic pressure in adjacent working face, the influence of the unreasonable layout of roadway and the support parameters of roadway.When the roadway is arranged vertically with the upper coal seam, the support intensity of the roadway is low and the roadway is driven under the influence of mining dynamic pressure in adjacent working face, the lower coal mining roadway is easy to lose stability.To improve the stability of surrounding rock of 13313 return air roadway and effectively control the deformation of roadway, according to the physical and mechanical properties and stress characteristics of surrounding rock of test roadway, a targeted solution was put forward.Firstly, the layout of roadways is improved, and the lower coal seam mining roadways are arranged under the goaf, and the distance between the lower roadway and the remaining pillars in the goaf of the upper coal seam is not less than 20 m.Secondly, the width of coal pillar in roadway protection is increased, and the width of coal pillar in roadway protection section is increased to more than 20 m, so as to reduce the influence of dynamic pressure of adjacent working face.Finally, the high pre-stressing full anchor cable is used to strengthen the support, so as to improve the integrity and bearing capacity of the bolt anchorage section.Industrial test was carried out in 13313 return air roadway and the roadway pressure observation was carried out.The results show that after being affected by the mining dynamic pressure of the adjacent 13311 working face, the coal pillars in the section are integral and have good bearing capacity.The force of anchor cable reaches 250-300 kN, which is about 50% of its breaking force.The force of anchor cable increases steadily, and the deformation of roadway separation and surrounding rock is well controlled.The displacement of roof and floor of 13313 return air roadway is about 400 mm, and the displacement of two sides is about 300 mm, the deformation of roadway surrounding rock is effectively controlled, which ensures the overall stability of the roadway and achieves a good support effect.However, with the roadway layout, during the lower 13313 working face mining, due to the influence of the concentrated stress of the coal pillar in No.11 coal seam above the working face, higher requirements were put forward for the management of its roof and coal wall, and great attention should be paid to it at that time. © 2019, Editorial Office of Journal of China Coal Society. All right reserved.
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页码:2682 / 2690
页数:8
相关论文
共 19 条
  • [1] Zhang Y., Liu C., Li C., Et al., The influence of ascending mining on the movement character of overlying coal seam in coal seams group, Journal of China Coal Society, 36, 12, pp. 1990-1995, (2011)
  • [2] Lu Y., Gao J., Liu C., Et al., Study on the optimal layout of roadways of contiguous seams by simultaneous mining, Journal of Mining and Safety Engineering, 29, 6, pp. 797-801, (2012)
  • [3] Zhang J., Principle and application of surrounding rock control along gateway in bottom seam of ultra closed seams, Coal Engineering, 45, 8, pp. 27-30, (2013)
  • [4] Wang Z., Fan M., Zheng Y., Support and monitoring analysis of mining roadway in lower layer under close seams, Coal Technology, 33, 10, pp. 96-98, (2014)
  • [5] Wu J., Wu Y., Wang Z., Et al., Analysis and control of surrounding rock deformation of multiple dynamic pressurized rodyway with small coal pillar along gob, Coal Mining Technology, 20, 6, pp. 67-71, (2015)
  • [6] Lin J., Fan M., Si L., Et al., Research on anchored bolt and anchored rope supporting soft and cracked coal roadway under near gob, Coal Engineering, 15, 4, pp. 45-50, (2010)
  • [7] Cheng Z., Qi Q., Kong W., Et al., Study on the reasonable layout of gob-side remained gateway of lower coal seam close to coal seam group, Journal of Mining and Safety Engineering, 32, 3, pp. 453-458, (2015)
  • [8] Kong D., Wang Z., Ren Z., Determining the optimum position of roadways of full-mechanized caving face in the close distance seams, Journal of Mining and Safety Engineering, 31, 2, pp. 270-276, (2014)
  • [9] Tu S., Wang F., Dou F., Et al., Fully mechanized top-coal caving underground stress at gateways under barrier pillars of an upper coal seam, Journal of China University of Mining & Technology, 35, 2, pp. 191-193, (2010)
  • [10] Zhang B., Yang S., Kang L., Et al., Discussion on method for determining reasonable position of roadway for ultra close multi-seam, Chinese Journal of Rock Mechanics and Engineering, 27, 1, pp. 97-101, (2008)