Deep Coal Mine Methane Drainage in China with Lower Greenhouse Gas Emissions: Insights of Borehole Protection Technology

Qingquan Liu, Haifeng Wang Shengli Kong
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引用次数: 1

Abstract

Climate warming has currently been one of the most important global environmental issues. Coal mine methane (CMM) is a typical greenhouse gas with higher global warming potential and ozone depletion potential than CO2. Unfortunately, it should be noted that the CMM emission increases rapidly with the increasing coal consumption in China. Fast and whole protection technology of borehole is a recently developed method to maintain the drainage efficiency in deep mining level. However, the potential negative impact of screen pipes on CMM drainage efficiency has not been well studied. To investigate this impact, an innovative coal permeability model from elastic to post-failure state was deduced to develop our previous gas migration model. Then redistributed stress, coal permeability and gas pressure around a borehole were studied by implementing the mathematical model into Comsol Multiphysics. Numerical results indicate that the negative impact of screen pipes on drainage subpressure do not affect the drainage efficiency due to the stress redistribution. Engineering application shows that comparing to the traditional borehole protection technology, the gas concentration increases about 120% and the gas flux increases about 110% by using the fast and whole protection technology. The research will provide theoretical foundation of CMM capture and borehole protect technology and is of great significance for the CMM utilization and the global environment.
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低温室气体排放的中国深部煤矿瓦斯排放:井眼保护技术的启示
气候变暖已成为当前全球最重要的环境问题之一。煤矿瓦斯是一种典型的温室气体,具有比二氧化碳更高的全球变暖潜势和臭氧消耗潜势。不幸的是,应该注意到,随着中国煤炭消费量的增加,CMM的排放量也在迅速增加。钻孔快速全程保护技术是近年来发展起来的一种保持深部采空区排水效率的方法。然而,筛管对CMM排水效率的潜在负面影响尚未得到充分研究。为了研究这种影响,我们推导了一个从弹性到破坏后状态的创新煤渗透率模型,以发展我们之前的气体运移模型。然后将数学模型应用到Comsol Multiphysics中,研究了井眼周围的重分布应力、煤层渗透率和瓦斯压力。数值计算结果表明,由于应力重分布,筛管对排水副压力的负面影响并不影响排水效率。工程应用表明,与传统井眼保护技术相比,采用快速全程保护技术可使瓦斯浓度提高约120%,瓦斯通量提高约110%。该研究将为三坐标测量机捕获和井眼保护技术提供理论基础,对三坐标测量机的利用和全球环境具有重要意义。
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来源期刊
Journal of Residuals Science & Technology
Journal of Residuals Science & Technology 环境科学-工程:环境
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审稿时长
>36 weeks
期刊介绍: The international Journal of Residuals Science & Technology (JRST) is a blind-refereed quarterly devoted to conscientious analysis and commentary regarding significant environmental sciences-oriented research and technical management of residuals in the environment. The journal provides a forum for scientific investigations addressing contamination within environmental media of air, water, soil, and biota and also offers studies exploring source, fate, transport, and ecological effects of environmental contamination.
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