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An overview of hydraulic fracturing and other formation stimulation technologies for shale gas production - Update 2015

机译:页岩气生产的水力压裂和其他地层增产技术概述-2015年更新

摘要

The technology of hydraulic fracturing for hydrocarbon well stimulation is not new, but only fairly recently has become a very common and widespread technique, especially in North America, due to technological advances that have allowed extracting natural gas from so-called unconventional reservoirs (tight sands, coal beds and shale formations). The conjunction of techniques such as directional drilling, high volume fracturing, micro-seismic monitoring, etc. with the development of multi-well pads has been especially successful in the last years in their application to shales, making gas production from shales technically and economically feasible. In Europe, the potential application of this technology has led to both great worries and high expectations: worries regarding the alleged magnitude of the environmental impact, and expectations about production of indigenous hydrocarbons. Other types of formation stimulation exist that do not make use of water-based fluids (for instance, explosive fracturing, dynamic loading, etc.), or that make use of fluids other than water. These are currently not extensively applied due to performance considerations. As for any other industrial activity, the deployment of high-volume hydraulic fracturing could potentially entail some risks to the environment. Among the concerns raised are high usage of water, methane infiltration in aquifers, aquifer contamination, extended surface footprint, induced local seismicity, etc. New technologies could help addressing these concerns (for instance by using non-toxic chemicals, by reducing or eliminating altogether the usage of water, by considerably reducing the surface footprint of a well, etc.).This report is an update of the original study carried out in 2013 (2013). It reviews the latest trends in hydraulic fracturing and alternative fracturing technologies, by searching the open literature, patent databases and commercial websites (mainly in the English language). For each identified technique, an overview is given. The technique is then briefly explained, and its rationale (reasons for use) is identified. Potential advantages and disadvantages are identified, and some considerations on costs are given. Finally, the status of the technique (for instance, commercially applied, being developed, concept, etc.) is given for its application to shale gas production.
机译:水力压裂技术对油气井的增产并不是什么新技术,但是直到最近才成为一种非常普遍和普遍的技术,尤其是在北美,这是由于技术的进步使得人们可以从所谓的非常规储层(致密砂岩)中提取天然气。 ,煤层和页岩地层)。近年来,定向钻井,大体积压裂,微地震监测等技术与多孔垫板的结合在页岩中的应用特别成功,从技术上和经济上使页岩的天然气生产成为可能可行。在欧洲,这项技术的潜在应用引起了极大的担忧和很高的期望:人们对所谓的环境影响的严重性以及对本土碳氢化合物生产的期望表示担忧。存在其他类型的地层增产措施,它们不使用水基流体(例如,爆炸压裂,动态载荷等),或者不使用水以外的流体。由于性能方面的考虑,目前这些方法尚未广泛应用。对于任何其他工业活动,大批量水力压裂的部署都可能对环境造成一定风险。引起关注的问题包括水的大量使用,含水层中甲烷的渗透,含水层的污染,扩展的地面覆盖范围,引起的局部地震活动等。新技术可以帮助解决这些问题(例如,通过使用无毒化学品,减少或完全消除此类问题)通过显着减少井的表面覆盖面积等方法来使用水。)本报告是2013年(2013年)进行的原始研究的更新。通过搜索开放文献,专利数据库和商业网站(主要是英语),它回顾了水力压裂和替代压裂技术的最新趋势。对于每种已识别的技术,都给出了概述。然后简要说明该技术,并确定其原理(使用原因)。确定了潜在的优点和缺点,并考虑了一些成本。最后,给出了该技术在页岩气生产中的应用状况(例如,商业应用,正在开发中,概念等)。

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