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Novel integrated techniques of drilling-slotting-separation-sealing for enhanced coal bed methane recovery in underground coal mines

机译:钻-井-分-封合新技术提高煤矿井下煤层气利用率

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摘要

Coal bed Methane (CBM), a primary component of natural gas, is a relatively clean source of energy. Nevertheless, the impact of considerable coal mine methane emission on climate change in China has gained an increasing attention as coal production has powered the country\u27s economic development. It is well-known that coal bed methane is a typical greenhouse gas, the greenhouse effect index of which is 30 times larger than that of carbon dioxide. Besides, gas disasters such as gas explosive and outburst, etc. pose a great threat to the safety of miners. Therefore, measures must be taken to capture coal mine methane before mining. This helps to enhance safety during mining and extract an environmentally friendly gas as well. However, as a majority of coal seams in China have low-permeability, it is difficult to achieve efficient methane drainage. Enhancing coal permeability is a good choice for high-efficiency drainage of coal mine methane. In this paper, a modified coal-methane co-exploitation model was established and a combination of drilling–slotting-separation–sealing was proposed to enhance coal permeability and CBM recovery. Firstly, rapid drilling assisted by water-jet and significant permeability enhancement via pressure relief were investigated, guiding the fracture network formation around borehole for high efficient gas flow. Secondly, based on the principle of swirl separation, the coal–water–gas separation instrument was developed to eliminate the risk of gas accumulation during slotting and reduce the gas emission from the ventilation air. Thirdly, to improve the performance of sealing material, we developed a novel cement-based composite sealing material based on the microcapsule technique. Additionally, a novel sealing–isolation combination technique was also proposed. Results of field test indicate that gas concentration in slotted boreholes is 1.05–1.91 times higher than that in conventional boreholes. Thus, the proposed novel integrated techniques achieve the goal of high-efficiency coal bed methane recovery.
机译:煤层气(CBM)是天然气的主要成分,是一种相对清洁的能源。尽管如此,随着煤炭生产为中国的经济发展提供动力,大量煤矿瓦斯排放对中国气候变化的影响越来越受到关注。众所周知,煤层气是一种典型的温室气体,其温室效应指数比二氧化碳大30倍。此外,瓦斯爆炸和突出等瓦斯灾害对矿工的安全构成了巨大威胁。因此,必须采取措施在开采前捕获煤矿瓦斯。这有助于提高采矿过程中的安全性,也有助于提取环保气体。但是,由于中国大多数煤层的渗透率低,因此很难实现有效的瓦斯抽采。提高煤的渗透性是高效开采煤矿瓦斯的好选择。本文建立了一个改进的煤-甲烷共开采模型,并提出了钻-槽-分离-密封相结合的方法,以提高煤的渗透率和煤层气的采收率。首先,研究了以水喷射为辅助的快速钻井以及通过卸压显着提高渗透率的方法,该方法指导了井眼周围裂缝网络的形成,从而实现了高效的气流。其次,基于旋流分离原理,开发了煤-水-气分离仪,以消除开槽期间气体积聚的风险并减少来自通风空气的气体排放。第三,为了提高密封材料的性能,我们基于微胶囊技术开发了一种新型的水泥基复合密封材料。此外,还提出了一种新颖的密封隔离组合技术。现场测试结果表明,长孔井眼中的瓦斯浓度是常规井眼中的1.05–1.91倍。因此,提出的新的综合技术达到了高效煤层气回收的目的。

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