METHOD OF RECOVERING ROOM-AND-PILLAR COAL PILLAR BY USING EXTERNAL REPLACEMENT SUPPORTS
20200318480 ยท 2020-10-08
Assignee
Inventors
- Nan ZHOU (Xizhou, Jiangsu, CN)
- Hengfeng LIU (Xuzhou, Jiangsu, CN)
- Meng LI (Xuzhou, Jiangsu, CN)
- Zhongya WU (Xuzhou, Jiangsu, CN)
- Jixiong ZHANG (Xuzhou, Jiangsu, CN)
Cpc classification
E21D15/483
FIXED CONSTRUCTIONS
E21F15/02
FIXED CONSTRUCTIONS
International classification
E21D13/00
FIXED CONSTRUCTIONS
E21D15/00
FIXED CONSTRUCTIONS
E21F15/02
FIXED CONSTRUCTIONS
Abstract
A method of recovering a room-and-pillar coal pillar by using external replacement supports. In the recovery of a room-and-pillar coal pillar, a cement material wall is formed by performing pouring around a coal pillar having a width to height ratio of less than 0.6, by means of a single-pillar sack arrangement technique, such that a coal pillar resource may be mined while a wall made from a cement filling material supports an overlying stratum. After mining is complete, a coal pillar goaf region is filled with the cement filling material, and after the cement filling material solidifies and is stable, the single pillar can be recovered.
Claims
1. A method for recovering room-type coal pillars by replacing with external supports, comprising the following steps: 1) casting a cement filling material wall around a room-type coal pillar by hanging bags on a single prop, and reserving a gap in the cement filling material wall; 2) mining the internal room-type coal pillar through the gap in the cement filling material wall, under a condition of supporting the overlaying strata with the cement filling material wall; 3) plugging the gap in the cement filling material wall and filling a cement filling material into the goaf area surrounded by the cement filling material wall, after the mining of the room-type coal pillar is completed; 4) recovering the single prop after the cement filling material is solidified and stabilized.
2. The method for recovering room-type coal pillars by replacing with external supports according to claim 1, wherein the width-to-height ratio of the room-type coal pillar is less than 0.6.
3. The method for recovering room-type coal pillars by replacing with external supports according to claim 1, wherein in the step 1), a mechanical model for the stage in which the overlaying strata is supported solely by the cement filling material wall is established on the basis of the Winkler beam theory, to obtain the displacement and stress condition of the roof in the supporting stage by the cement filling material wall; and the theoretical casting width of the cement filling material wall is obtained according to a first strength theory of roof and a determination criterion for the ultimate strength of the cement filling material wall.
4. The method for recovering room-type coal pillars by replacing with external supports according to claim 1, wherein the width of the cement filling material wall is calculated through the following procedures: a. sectioning a half plane of the room-type coal pillar for analysis, setting the load of the overlaying strata on the roof as a uniformly distributed load q, the foundation coefficient of the cement filling material wall as k, the spacing between adjacent small room-type coal pillars (1) as c, the width of the cement filling material wall as b, the width of the room-type coal pillar as a and the total width of the room-type coal pillars as 2a, and the differential equation of deflection curve for the segments of the roof in the analyzed area is as follows:
.sub.max[.sub.i](v) where, [.sub.t]allowable tensile stress on the roof, MPa; the spacing c between adjacent room-type coal pillars and the width 2a of the room-type coal pillars are known, the minimum reserved width b.sub.1 of the reserved coal pillar under the first strength theory of roof can be obtained according to the criterion in the expression (v); e. besides, the width b.sub.2 of the cement filling material wall under the ultimate strength theory shall be enough to prevent the cement filling material wall from broken; thus, according to the ultimate strength theory, the following criterion should be met:
F.sub.P(vi) where, force =k.sub.a.sup.a+b.sub.2 (x)dx acting on the filling material wall, m; ksafety factor, determined as 2; .sub.pultimate strength of the cement filling material wall, MPa; the minimum reserved width b.sub.2 of the cement filling material wall under the ultimate strength theory is calculated on the basis of the expression (vi); f. calculating the reserved width b of the cement filling material wall (3) as b=max{b.sub.1, b.sub.2}.
5. The method for recovering room-type coal pillars by replacing with external supports according to claim 1, wherein in the step 2), the room-type coal pillar is mined with a continuous coal miner, and the mined coal is transported by means of a forklift truck to a belt conveyer and then conveyed by the belt conveyer out of the mining area.
6. The method for recovering room-type coal pillars by replacing with external supports according to claim 1, wherein in the step 3), the gap in the cement filling material wall is plugged by building a plugging wall, and the cement filling material is pumped by means of a filling pump through a pumping opening reserved in the plugging wall into the goaf area surrounded by the cement filling material wall for filling.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
[0046] In the figures: 1room-type coal pillar; 2single prop; 3cement filling material wall; 4cement filling material; 5gap in cement filling material wall; 6plugging wall; 7continuous coal miner; 8forklift truck; 9belt conveyer.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0047] The present disclosure discloses a method for recovering room-type coal pillars by replacing with external supports, which comprises: in the process of recovering a room-type coal pillar, casting a cement filling material wall around the room-type coal pillar with width-to-height ratio less than 0.6 by hanging bags on a single prop, mining the room-type coal pillar resource under a condition of supporting the overlaying strata with the cement filling material wall, filling the goaf area of the room-type coal pillar with the cement filling material after the mining is completed, and recovering the single prop after the cement filling material is solidified and stabilized. A mechanical model for the stage in which the overlaying strata is supported solely by the cement filling material wall is established on the basis of the Winkler beam theory, to obtain the displacement and stress condition of the roof in the supporting stage by the cement filling material wall. The theoretical casting width of the cement filling material wall is obtained according to a first strength theory of roof and a determination criterion for the ultimate strength of the cement filling material wall. The method can effectively recover coal pillars left in room-type coal mining, reduce waste of coal resource, maintain stability of the overlaying strata above the coal pillar and avoid the occurrence of a series of safety problems.
[0048] Hereunder the present disclosure will be further described in detail with reference to the drawings and embodiments.
[0049] In the method for recovering room-type coal pillars by replacing with external supports provided in the present disclosure, as shown in the layout plan view of a coal mining face in
[0050] As shown in
to obtain a deflection curve equation of the roof:
.sub.max[.sub.i](v)
where, [.sub.t]allowable tensile stress on the roof, MPa; [0064] the spacing c between adjacent room-type coal pillars (1) and the width 2a of the room-type coal pillars are known, the minimum reserved width b.sub.1 of the reserved coal pillar (2) under the first strength theory of roof can be obtained according to the criterion in the expression (v); [0065] e. besides, the minimum reserved width b.sub.2 of the cement filling material wall (3) under the ultimate strength theory shall be enough to prevent the cement filling material wall (3) from broken; thus, according to the ultimate strength theory, the following criterion should be met:
F.sub.P [0066] where, force =k.sub.a.sup.a+b.sub.2 (x)dx acting on the filling material wall, m; [0067] ksafety factor, determined as 2; [0068] .sub.pultimate strength of the cement filling material wall, MPa. [0069] The minimum reserved width b.sub.2 of the cement filling material wall (3) under the ultimate strength theory is calculated on the basis of the expression (vi). [0070] Finally, the actual reserved width b of the cement filling material wall (3) is calculated as b=max{b.sub.1, b.sub.2}.
EXAMPLE
[0071] The above solution is applied on the basis of the geologic conditions in a coal mine in the Northwest region of China. In the coal mine, the roof thickness is 2 m, the mining height is 4 m, the coal pillar length is 2 m, the room length is 10 m, the elastic modulus of the roof is 0.9 GPa, the foundation coefficient of the cement filling material wall is 1.510.sup.6 N/m.sup.3, the allowable tensile stress of the roof is 2.8 MPa, the ultimate strength of the cement filling material wall is 39 MPa, and the uniformly distributed load is q=2 MPa. According to the equation (v), in the case that the width of the cement filling material wall is 3 m, the distribution of bending moment in the roof is shown in
[0072] The embodiments described above are only preferred embodiments of the present disclosure, and it should be noted that the person skilled in the art can make various improvements and modifications without departing from the principle of the present disclosure, and these improvements and modifications should be deemed as falling in the scope of protection of the present disclosure.