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High Drilling Methane Drainage in Fracturing Zones Formed by Water Injection into Boreholes

机译:钻孔注水形成的压裂区高钻采甲烷排放

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Methane drainage method should be used before coal mining of many modern collieries because ventilation air methane is in sufficient to keep methane level within regulation values. The technology of high drilling methane drainage (HDMD) has been used for methane drainage although its effect is not very stable due to parameter design. The height of the fracturing zones is determined mostly according to empirical formula, on-site observation and numerical simulation analysis. In this paper, a method was introduced for determining the height of the air fracturing zones (AFZs) based on its high similarity to the characteristics of Fracturing zones and the relationship between the height of Fracturing zones and the strain of overlying rock strata. The application of water injection in both Shuangdingshan and Dongrong collieries found that the theoretically calculated the height of the Fracturing zones was approximately equal to the measured one in field tests within a permissible error of less than 5%, proving that the method is feasible. Based on the designed drainage parameters, the utilization of HDMD technology in the collieries mentioned above found that the methane concentrations in both tail gate and upper corner were controlled in the ranges of 0.17% to 0.32% and 0.26% to 0.84%, respectively. These results showed that the water injection verified HDMD in Fracturing zones could effectively solve the problem of methane overrun and also verified the accuracy and reliability of its related theory.
机译:在许多现代煤矿的煤矿开采之前,应使用甲烷排放方法,因为通风的甲烷气体足以将甲烷含量保持在规定值范围内。尽管由于参数设计,其效果不是很稳定,但高钻井甲烷排放技术已被用于甲烷排放。压裂区的高度主要根据经验公式,现场观察和数值模拟分析确定。本文介绍了一种基于压裂带特征的高度相似性以及压裂带高度与覆岩地层应变之间的关系,确定压裂带高度的方法。注水在双顶山和东荣煤矿的应用都发现,理论计算的压裂带高度大约等于现场试验中测得的高度,允许误差小于5%,证明了该方法是可行的。根据设计的排水参数,在上述煤矿中利用HDMD技术发现,尾门和上角的甲烷浓度分别控制在0.17%至0.32%和0.26%至0.84%的范围内。这些结果表明,压裂区注水验证的HDMD可以有效解决甲烷超限问题,并验证了相关理论的准确性和可靠性。

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