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首页> 外文期刊>Journal of natural gas science and engineering >Investigation of formation heat treatment to enhance the multiscale gas transport ability of shale
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Investigation of formation heat treatment to enhance the multiscale gas transport ability of shale

机译:提高页岩多尺度输气能力的地层热处理研究

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In order to achieve the most economical production of shale gas, fracture networks should be as complex as possible to connect the matrix micropores, natural fractures and induced fractures efficiently. Since shale rock is very tight, hydraulic multi-fracturing in horizontal wells has been the key technology in shale gas development. However, it is still difficult to connect small-scale pores in the matrix. Meanwhile, the recovery rate of a fracturing fluid is low, resulting in severe formation damage primarily induced by water blocking or water phase trapping. In this work, formation heat treatment is studied for the first time in gas-shale to address these issues. Samples from Longmaxi Shale are used to investigate the change in the multiscale gas transport ability after a high temperature treatment. A core sample heating system is specially designed to measure a permeability change during a high temperature treatment. Field scanning electron microscopy imaging, total organic carbon and low pressure nitrogen adsorption measurements are also implemented to analyze a change in the micro structure after the high temperature treatment. The results indicate that shale permeability increases rapidly with an increase in temperature, especially when the temperature is more than 400-500 degrees C, which can be described as a threshold value in a percolation model. Experimental results also indicate that the quality of the shale matrix can be dramatically improved after a high temperature treatment since there is a high quartz and organic matter content in the shale. Stimulation mechanisms of a formation heat treatment in shale gas reservoirs are described as water removing, mineral and organic matter structure changes and multiscale fracture network generation. For the field application of formation heat treatment, both its advantages and issues that still need to be addressed are deeply analyzed. It is indicated that the mid-late period of shale gas production can be extended, and problems induced by a residual fracturing fluid can be solved by formation heat treatment. Constructive field operation suggestions, which combine the advantages of electrical heating and microwave heating, are presented. (C) 2016 Elsevier B.V. All rights reserved.
机译:为了实现最经济的页岩气生产,裂缝网络应尽可能复杂,以有效地连接基质微孔,天然裂缝和诱发裂缝。由于页岩非常致密,因此水平井的水力多重压裂已成为页岩气开发的关键技术。然而,仍然难以在基质中连接小规模的孔。同时,压裂液的采收率低,导致主要由阻水或水相捕集引起的严重地层损害。在这项工作中,首次在页岩气中研究了地层热处理以解决这些问题。 Longmaxi页岩样品用于研究高温处理后多尺度气体传输能力的变化。岩心样品加热系统经过专门设计,可测量高温处理过程中的渗透率变化。还实施了场扫描电子显微镜成像,总有机碳和低压氮吸附测量,以分析高温处理后微观结构的变化。结果表明,页岩渗透率随温度的升高而迅速增加,特别是当温度高于400-500摄氏度时,这可以在渗流模型中描述为阈值。实验结果还表明,由于页岩中石英和有机物含量高,高温处理后页岩基质的质量可以得到显着改善。页岩气储层地层热处理的增产机理被描述为除水,矿物和有机质结构的变化以及多尺度裂缝网络的产生。对于地层热处理的现场应用,其优点和仍需解决的问题都进行了深入分析。结果表明,可以延长页岩气生产的中后期,通过地层热处理可以解决残余压裂液引起的问题。提出了建设性的现场操作建议,该建议结合了电加热和微波加热的优点。 (C)2016 Elsevier B.V.保留所有权利。

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