Study on Gas Control Methods Optimization for Mining Safety

Effective gas control is of significance for safe efficient coal mining in Haizi Coal Mine and other mines with similar geological conditions. ,is study concentrates on gas control theories and techniques in multiple coal seams of Haizi Coal Mine (No. 7, No. 8, No. 9, and No. 10 coal seam from top to bottom). To minimize risk of high gas emission and outburst hazard, No. 10 seam was mined first as a protective seam prior to the mining of its overlying outburst-prone No. 7, No. 8, and No. 9 seam. Four gas drainage measures were determined for gas control, including cross-measure boreholes into overlying coal seams, surface goaf wells, roof boreholes, and roof gas drainage roadway.,ese gas control measures, if implemented through entire coal seam extraction, would be possibly uneconomic. An investigation was undertaken to analyze effects of those four measures on gas emission, methane concentration, and gas drainage quantity in No. 2 1024 mining panel of No. 10 seam. Results indicate that the highly expensive gas drainage measure of a roof roadway has poor drainage performance and could be effectively replaced by roof boreholes. When adopting the optimized combination of gas drainage measures, drainage efficiency of No. 7 seam, No. 8 seam, and No. 9 seam could reach 58.64% and decrease gas pressure to be below 0.74MPa. Outcomes of this study could provide beneficial guidance not only for gas drainage design optimization in Haizi Coal Mine but also for other multiple-seam mines with similar mining and geological conditions, for increasing gas drainage efficiency and guaranteeing mining safety.


Introduction
Due to the specific conditions of energy demand in Chinese economic development, coal has been and will continue to be the dominant energy resource in China. Hence, safe production and sustainable development of coal industry are of significance. However, coal mine safety remains to be a key obstacle in mining activities. According to statistics, 3985 gas incidents occurred in Chinese coal mines in the period from 2001 to 2013 when coal industry developed rapidly [1]. erefore, preventing the occurrence of gas disasters is of great necessity.
Most coal mines in China have multiple coal seams. To minimize the risk of high gas emission and coal and gas outburst, a less outburst-prone seam is often mined first as a protective seam prior to the mining of its overlying or underlying seams. Meanwhile, these relieved overlying or underlying seams are called protected seam as these seams experience substantial stress relief and permeability enhancement which both could help preventing mining hazards [2].
is protective seam mining method has been widely applied and delivered large amount of benefits on guaranteeing mining safety [3,4]. Gas drainage measures are always adopted in combination with this method. Popular gas drainage measures include surface gas wells, underground gas boreholes, and tunnels or combination of the above. Starting in the 1970s, Chinese coal mines adopted the protective mining method with various gas drainage measures depending on localized geological and mining conditions, e.g., cross-measure boreholes were used to drain gas from relieved protected seams in No. 4 Mine of Yangquan Coal Group in Shanxi Province, Wudanggou Coal Mine in Inner Mongolia, and Dayong Coal Mine in Guizhou Province [5]. In Yutianbao Coal Mine of Nantong Mining Area and Xieqiao Coal Mine in Huainan City, the crossmeasure borehole method in the intake airflow lane of mining panel is also adopted, in which the drilling-site construction is convenient and the maintenance time and workload of lane do not increase [6][7][8][9][10][11]. Moxinpo Coal Mine in Chongqing City and Luling Coal Mine in Anhui Province chose to drill drainage boreholes in the roadway located outside protective layer. is method is widely used for panel in coal seams of various dip angle and mining methods [12,13].
Over the years, the protective mining method combined with various gas drainage measures has been studied and applied in various coal seam conditions [14][15][16][17][18][19]. In general, taking more comprehensive gas drainage measures could lead to better gas control. However, implementation of comprehensive gas drainage measures is quite expensive, particularly in current weak coal market. It is therefore important to optimize these gas drainage measures without compromising gas control effectiveness. Taking Haizi Coal Mine as an example, this study discusses on-site investigation results of optimization of gas drainage measures combined with the multiple-seam protective mining method, for providing references on conducting safe efficient gas drainage and coal mining in large amount of coal mines similar to Haizi Coal Mine.

Site Conditions
Haizi Coal Mine of Huaibei Mining Company is located about 40 km north of Huaibei City, Anhui Province, China ( Figure 1). is mine adjoins another coal mine named Linhuan in the southeast (separated by a Fault) and is bounded by the Daliujia Fault in the west. Recoverable mining area is about 11 km long and 2.6 km wide, covering an area of approximately 26.7 km 2 .
ere are 10 coal seams in the mining area, numbered from top to bottom as No. 1 to No. 10 seam. Generalized stratigraphic column is shown in Figure 2. Four seams including No. 7 seam, No. 8 seam, No. 9 seam, and No. 10 seam are mainly extracted. Gas pressure of those four coal seams is 1.6 MPa, 0.8 MPa, 0.85 MPa, and 0.6 MPa, respectively. Gas contents of them are 12 m 3 /t, 8.7 m 3 /t, 9 m 3 /t, and 5 m 3 /t, respectively. e thickness of those four coal seams is 0.5 m, 1.1 m, 0.7 m, and 9 m, respectively.
Coal mine risk assessment shows that except for No. 10 seam, the other three extraction seams (No. 7 seam, No. 8 seam, and No. 9 seam) are both outburst-prone. No. 10 seam belongs to the igneous intrusion area, and it does not have outburst-prone. erefore, in this multiple-seam mining, No. 10 seam is mined first as the protective seam, for decreasing risk of outburst and high gas emission during mining activities of its adjacent overlying seams.
is study concentrates on the No.

Design Principle.
Protective seam mining is one of the most economic and effective method in mitigating coal and gas outburst risk of multiple coal seam group. Mining the protective No. 10 seam in Haizi Coal Mine will significantly affect the stress and gas conditions in protected overlying seams of No. 7, No. 8, and No. 9. As the protective seam being mined, three roof zones in vertical direction will be formed, namely, caved zone, fractured zone, and subsidence zone [20,21]. Stress in the protected seams will decrease, fractures generate, and permeability increases, and finally gas desorbs and pressure drops. As a result, coal and gas outburst risk in protected seams is reduced, as shown in Figure 4 [19,22,23].
It should be noted that there is a hard igneous rock layer in the overlying strata of No.7 seam. is will prolong the subsiding time of overlying strata and the fracture closure time in the fractured zone. is extra time is good for gas drainage if drainage boreholes are in place prior to the extraction of protective No. 10 seam.

Gas Drainage Design.
Effective gas drainage is essential to Haizi Coal Mine as a complex outburst-prone mine. Four gas drainage measures are initially designed for No. 2 1024 panel, including cross-measure boreholes into the protected seams, surface goaf wells, roof boreholes, and a roof gas drainage roadway. ese methods are popularly used in coal mines. Detailed design of these measures is described below.
Cross-measure boreholes serve two purposes in Haizi Coal Mine. One is preventing excessive gas from adjacent seams into No. 2 1024 panel. Another one is draining gas released from overlying protected seams to reduce or eliminate the outburst risk. Figure 5 illustrates principle of gas emission in protected coal seams and gas extraction methods using cross-measure boreholes.
Some of the boreholes are designed to only pass through No. 7 seam and No. 8 seam by 0.5 m, while the others will be drilled past No. 9 seam by 0.5 m. As these overlying seams are soft and of low permeability, boreholes with 94 mm diameter are adopted to minimize risk of borehole collapse and closure. Bottom of the boreholes is spaced 10 m. A cross section of cross-measure boreholes is shown in Figure 6.
Surface wells are frequently used to capture goaf gas. Typically, with the advance of a panel in a protective seam, "three horizontal zones" are also formed in overlying strata, namely, intact zone, separation zone, and recompaction zone ( Figure 7). With the development of working face, bending subsidence zone also goes with it. In the development process, the overlying protected coal seam in bending subsidence zone will be broken, permeability experiences increase, and a large amount of gas emits out. Fracture network becomes flow channels of gas, and gas could be drained by surface wells.
Each of those two wells consists of four sections, as shown in Figure 9.
(1) Surface Pipe. Use a ϕ311 mm bit to drill the well.
Cement it with a ϕ245 * 10 mm casing to prevent water in quaternary aquifer from getting into the underground from new strata to bedrock. Roof boreholes are drilled into the roof of protective seam from ventilation roadway of mining area. e boreholes are under suction pressure and used to capture roof gas which may otherwise flow into longwall mining face.
Highly located drilling site is placed in No. 2 1024 ventilation roadway and is constructed in every 80-110 meters. ere is 2.5 m rock pillar between floor of drilling sit and coal seam roof. A 108 mm diameter bit is used to drill borehole up to 6 m, and then a 89 mm diameter bit is adopted to drill the other borehole section. Borehole depth is drilling field spacing plus 40 meters, and borehole position is at 3.5 meters from coal seam roof. It is determined that bottom position of borehole is about 30 meters from coal seam roof according to drainage situation in Haizi Coal Mine. Five boreholes are constructed in each drilling site, as shown in Figure 10.
A special roof roadway parallel with panel gateroads is designed in the fractured zone of roof of protective seam.
is roadway is used to capture goaf gas. In the initial stage of panel mining from its starting position, some boreholes are required to be drilled downward from the roadway into panel caving zone to obtain effective gas drainage as at this time the fractured zone of roof may not extend to roadway area. e best position of roadway for effective gas drainage    Figures 12-15, for the case roof boreholes being not adopted, the panel relative and absolute gas emission  Reddish-brown,consisting of sand and clayey.

Gas Drainage Design Optimization in
Reddish-brown mud bonded sand,gravel based.

Red and brown.
The upper part is gray and purple sandshale,middle part is grey-green sandstone.
The upper part is sandshale,middle part is fine-grained sandstone.
Consisting of fine-grained and medium-grained sandstone.
Belong to the Ordovician aquifer,containing a great amount of water.
Consisting of mudstone,siltstone and dark grey mudstone.
Consisting of mudstone,sandstone and siltstone.
Gray fine-grained sandstone and dark gray mudstone.
Gray medium-grain sandstone.   Stress decreases, seam pressure releases. e effect to incite gas outburst decreases.
Gas pressure gradient decreases.
e gas effect to evolve the outburst decreases.
Coal ability in resisting the destruction strengthens.
coal and gas outburst hazard is eliminated (or reduced).
Coalmass's strength increases.      In the case that roof gas drainage tunnels are closed, relative gas emission quantity is observed to increase in medium period of drainage but being relatively flat in other periods. Absolute gas emission quantity relatively reduces. Gas drainage quantity has no obvious change, but methane concentration decreases obviously in this case.
In the case that cross-measure boreholes being not used, both relative and absolute gas emission quantities do not obviously change. Gas drainage quantity of other drainage boreholes and methane concentration also experiences small change.
According to above analysis, effects of roof gas drainage tunnel and its accompanying boreholes on drainage performance in mining panel are limited. Methane concentration drops when they are closed. In comparison, crossmeasure borehole is the main measure to drain gas from No. 7 seam, No. 8 seam, and No. 9 seam because its gas drainage quantity is large. erefore, it is determined to replace roof gas drainage tunnel and its accompanying boreholes with horizontal long roof boreholes.
Taking into account high excavation cost and low gas drainage quantity of roof gas drainage tunnel in the early  (1) e sealing material includes piezometric tube, injection pipe, reflux pipe, cement, and polyurethane foam.
(2) Pressure test section of the piezometric tube is located at the top of borehole, and its front end is protected by steel mesh to prevent pipe plugging. (3) Cement slurry and UEA expansion agent are used for borehole sealing. In order to completely seal the borehole, a certain amount of UEA expansion agent is added in the cement slurry, and the expansion of UEA is used to fill borehole space after solidification and contraction of cement slurry. e ratio of cement, UEA expansion agent, and water is 100 : 8 : 110. e position of injection pipe is shown in Figure 17. First, the gap between piezometric tube, injection pipe, and borehole wall is sealed with polyurethane for about 1.5 m, and then the injection pipe is used for pumping cement slurry until the slurry returns through reflux pipe.
(4) After 48 hours of solidification of slurry, pressure gauge is installed and pressure-measurement construction is completed. e residual gas pressure in sealed borehole was measured by using pressure gauge. Results show that gas drainage efficiency of No. 7 seam, No. 8 seam, and No. 9 seam reached 58.64%, resulting in a significant reduction of gas pressure to be below 0.74 MPa (Figure 18). According to "Provisions for the Prevention and Control of Coal and Gas Outburst" in China, it is verified that the optimization of gas drainage scheme was effective. It has demonstrated that this optimization could effectively reduce gas emission and

Conclusions
is study focuses on gas drainage design optimization in the mining process of No. 2 1024 panel for mining safety in Haizi Coal Mine. Four gas drainage measures are discussed for gas control, i.e., cross-measure boreholes into overlying seams, surface goaf wells, roof boreholes, and gas drainage roof roadway. Optimization on combinations of above measures is conducted and following conclusions could be obtained: drainage performance of roof gas drainage roadway with accompanying boreholes is poor. It could be replaced by horizontal long roof boreholes as the latter shows better drainage outcomes and could achieve safe mining and low costs. In No. 2 1023 panel, when adopting roof boreholes (replacing roof gas drainage roadway), gas drainage concentration ranges from 15% to 90%, when the drainage quantity being stable at 8 m 3 /min. Furthermore, after implementing optimized combination of gas drainage measures, the drainage efficiency of No. 7 seam, No. 8 seam, and No. 9 seam increases to 58.64%, resulting in a significant reduction of gas pressure to be below 0.74 MPa.
Outcomes of this study could help eliminating risk of coal and gas outburst in upper far-distance protected coal seams (No. 7 seam, No. 8 seam, and No. 9 seam) through optimization of gas drainage design in the mining process of the lower protective coal seam (No. 10 seam). For other coal mines that have similar geological conditions with Haizi Coal Mine, it is expected to deliver some guidance on their gas drainage design, for enhancing gas drainage performance and ensuring mining safety.
Data Availability e data used for conducting classifications are available from the corresponding author authors upon request.

Conflicts of Interest
e author(s) declare that there are no conflicts of interest with respect to the research, authorship, and/or publication of this article.