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Changes in pore structure and permeability of low permeability coal under pulse gas fracturing

机译:脉冲瓦斯压裂低渗透煤的孔隙结构和渗透率变化

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In order to enhance effectively permeability of coal seams and increase the efficiency of gas extraction, the pulse gas fracturing is proposed as a new stimulation method. In this study, the pulse gas fracturing experiment of low permeability coal on the laboratory scale was executed and sequential 267 pulse times were preformed. The mercury intrusion porosimetry, scanning electron microscope and permeability measurements were conducted to investigate the changes in the pore structure and permeability caused by the pulse gas injection. The results show as follows. (1) The volume of the coal specimen repeats the swelling-shrinkage process during the pulse gas fracturing which contributes to improve the size and shape of pores and generate micro-cracks in the coal. The deformation of the coal sample has a fatigue threshold in the pulse gas fracturing and its value is near 100 pulse times. (2) The pulse gas fracturing promotes the transfer of smaller pores to larger pores and improves the pore size distribution. After the pulse gas fracturing, the average incremental pore volume of transition pores, mesopores and macro pores increases 25.85%, 117.86% and 105.07%, respectively. The total pore volume of the coal sample has an increase of 80.65%. The macropores, mesopores and transition pores volumes increase by 165.22%, 438.33% and 27.27%, respectively. The results indicate that pulse gas fracturing can improve the pore space and the pore distribution, and ultimately increase the permeability of the coal. The change that micropores transfer into larger pores also results that the cumulative pore specific surface of transition pores, mesopores and macropores has an increase of 10.18%, contributing to coalbed methane (CBM) sorption/desorption and diffusion. (3) The crossover network cracks are formed in the coal during the pulse gas fracturing. The porosity and permeability of the coal are obviously improved by the pulse gas fracturing, indicating that the pulse gas fracturing can be used to effectively enhance the permeability of CBM reservoirs. It is worth noting that there is a critical pulse time for the increase of the coal permeability and its value is about 100 pulse times under the stress condition and pulse gas injection method of this research. (C) 2016 Elsevier B.V. All rights reserved.
机译:为了有效提高煤层的渗透性和提高瓦斯抽采效率,提出了脉冲瓦斯压裂法作为一种新的增产方法。在这项研究中,在实验室规模进行了低渗透性煤的脉冲气裂实验,并连续进行了267个脉冲时间。进行了压汞法,扫描电子显微镜和渗透率测量,以研究脉冲气体注入引起的孔隙结构和渗透率的变化。结果如下。 (1)煤样的体积在脉冲气体压裂过程中重复溶胀-收缩过程,这有助于改善孔隙的大小和形状并在煤中产生微裂纹。煤样品的变形在脉冲气体破裂中具有疲劳阈值,其值接近100个脉冲时间。 (2)脉冲气体压裂促进了小孔向大孔的转移并改善了孔径分布。脉冲气体压裂后,过渡孔,中孔和大孔的平均增量孔体积分别增加了25.85%,117.86%和105.07%。煤样品的总孔体积增加了80.65%。大孔,中孔和过渡孔的体积分别增加了165.22%,438.33%和27.27%。结果表明,脉冲气裂可以改善孔隙空间和孔隙分布,最终提高煤的渗透率。微孔转移到较大孔中的变化还导致过渡孔,中孔和大孔的累积孔比表面增加了10.18%,有助于煤层气(CBM)的吸附/解吸和扩散。 (3)在脉冲气体压裂过程中,煤中形成了跨接网络裂缝。脉冲气体压裂明显改善了煤的孔隙度和渗透率,表明脉冲气体压裂可有效提高煤层气储层的渗透率。值得注意的是,在本研究的应力条件和脉冲气体注入方法下,煤渗透率的增加存在临界脉冲时间,其值约为100个脉冲时间。 (C)2016 Elsevier B.V.保留所有权利。

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