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The Use of Advanced Percussion Drilling to Improve Subsurface Permeability for Enhanced Geothermal Systems

机译:使用先进的冲击钻机来改善增强型地热系统的地下渗透率

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Subsurface permeability is typically enhanced in current EGS developments by injecting high volumes of fluid at pressures that will open pre-existing natural fractures or weaknesses in the rock. A few existing stimulation technologies that do not use water have been developed and applied with some success. These technologies include pneumatic or compressed air fracturing, propellant fracturing, and explosive fracturing. However, given the limitations of existing technologies, alternative technologies must still be discovered to cost effectively stimulate geothermal resources in a controlled manner, without the use of high volumes of fluids. One promising technology is percussion fracturing. We investigated the use of advanced percussion fracturing technology to stimulate and enhance permeability in hot rock for EGS development without large water volume usage. A preliminary review and characterization of the fundamental rock mechanical processes associated with percussion fracturing was first studied. Next, a 3D numerical model was developed for the percussion drilling process to study the impact of dynamic stress waves generated by percussion drilling at the borehole face. This leads to estimates of the damage and fracture extent away from the wellbore, as a function of input energy and relative application of dynamic shear and compression loading at the wellbore. Our preliminary research results show that permeability improves in the near wellbore region. We conclude that this novel stimulation technique can enhance the feasibility for application of EGS, thereby supporting the growth of a renewable, clean energy technology while increasing our domestic energy production.
机译:在当前的EGS开发中,通常通过在一定压力下注入大量流体来打开地下已存在的自然裂缝或弱点,从而提高地下渗透率。已经开发并应用了一些不用水的现有刺激技术,并取得了一些成功。这些技术包括气动或压缩空气压裂,推进剂压裂和爆炸性压裂。但是,鉴于现有技术的局限性,仍必须找到替代技术,以可控方式经济有效地刺激地热资源,而无需使用大量的流体。一种有前途的技术是敲击压裂。我们研究了使用先进的打击压裂技术来刺激和增强热岩的渗透性,以进行EGS开采而无需大量用水。首先研究了与冲击破裂相关的基本岩石力学过程的初步回顾和特征。接下来,为冲击钻探过程开发了一个3D数值模型,以研究由冲击钻探在井眼工作面产生的动态应力波的影响。这导致对远离井眼的破坏和裂缝程度的估计,这是输入能量和井眼动态剪切和压缩载荷的相对应用的函数。我们的初步研究结果表明,井眼附近地区的渗透率有所提高。我们得出的结论是,这种新颖的刺激技术可以增强EGS的应用可行性,从而支持可再生清洁能源技术的发展,同时增加我们的国内能源产量。

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