压裂技术——我们最终能控制裂缝高度吗?

M. Rylance, Y. Korovaychuk
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引用次数: 0

摘要

自从我们开始进行水力压裂以来,我们一直在努力确保我们远离不受欢迎的地层,这些地层可能含有水和/或天然气。水力压裂的“圣杯”——绝对控制裂缝高度——70多年来一直困扰着油气行业。当然,已经有很多人声称有解决方案,但所有的营销方法充其量只是延缓了不可避免的增长,最坏的情况是一种没有什么实际价值的万金油方法。从根本上说,应用的技术试图延迟或影响净压力和应力变化的基本方程;但最终不得不尊重他们,这样做会导致他们有限的成功或彻底的失败。快进到2020年,重新评估身高增长限制的相对重要性,以及可能发生的变化来帮助我们实现这一目标。非常规油气开发的重点是在微/纳米达西环境中创造尽可能多的表面积,几乎适用于任何阶段,但通常视线较差,无法获利。然而,常规油气的更有价值的业务是在越来越薄的储层中进行,这些储层的渗透率经常下降,但潜在的经济回报要高得多。然而,非常规技术的成功之处在于,它快速部署并加速了一系列完井技术,而这些技术在几年前还无法实现。我们将证明这些技术最终有可能提供控制裂缝高度增长的能力。考虑一系列先前应用的高度增长方法,将证明它们是如何试图欺骗或蒙混高度增长产生机制的。有了这些清晰的信息,我们就可以考虑完井技术在控制高度增长方面的进步。我们认为,凭借目前可用的技术和方法,身高增长控制最终是可以实现的。接下来,我们将介绍一个多井试点项目,该项目将于2020/ 2021年在西伯利亚西部部署和执行;在薄油环、低于天然气或高于水的低渗透砂岩储层中,仍有数十亿桶石油有待开采。我们对过去70年来所采用的各种增高方法进行了全面的评估,但在每种情况下都证明了每种方法的不可靠性和局限性。然而,我们不会解释这种控制是无法实现的,相反,我们将展示一种数学上合理的方法,以及现场数据和证据,证明这是可能的。演示将展示过去10 - 15年的完成进度使这种方法在当今成为现实;更广泛的实地实施终于指日可待。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fracturing Technology - Can We Finally Control Fracture Height?
For as long as we have been performing hydraulic fracturing, we have been trying to ensure that we stay out of undesirable horizons, potentially containing water and/or gas. The holy grail of hydraulic fracturing, an absolute control of created fracture height, has eluded the industry for more than 70 years. Of course, there have been many that have claimed solutions, but all the marketed approaches have at best merely created a delay to the inevitable growth and at worst been a snake-oil approach with little actual merit. Fundamentally, the applied techniques have attempted to delay or influence the underlying equations of net-pressure and stress variation; but having to ultimately honour them and by doing so then condemned themselves to limited success or outright failure. Fast forward to 2020, and a reassessment of the relative importance of height-growth constraint and what may have changed to help us achieve this. The development of unconventionals are focused on creating as much surface area as possible in micro/nano-Darcy environments, across almost any phase, but with typically poor line of sight to profit. However, the more valuable business of conventional oil and gas is working in thinner and thinner reservoirs with an often-deteriorating permeability, but with a significantly higher potential economic return. What unconventional has successfully delivered however, is a rapid deployment and acceleration in a range of completion technologies that were unavailable just a few years ago. We will demonstrate that these technologies potentially offer the capability of finally being able to control fracture height-growth. Consideration of a range of previously applied height-growth approaches will demonstrate how they attempted to fool or fudge height growth creation mechanisms. With this clarity, we can consider what advances in completion technology may offer in terms of delivering height growth control. We suggest that with the technology and approaches that are currently available today, that height-growth control is finally within reach. We will go on to describe a multi-well Pilot program, in deployment and execution in 2020/021 in Western Siberia; where billions of barrels remain to be recovered in thin oil-rim, low permeability sandstone reservoirs below gas or above water. A comprehensive assessment of the myriad of height-growth approaches that have been utilized over the last 70 years was performed, but in each case demonstrated the fallibility and limitations of each of these. However, rather than the interpretation that such control is not achievable, instead we will show a mathematically sound approach, along with field data and evidence that this is possible. The presentation will demonstrate that completion advances over the last 10 - 15 years make this approach a reality in the present day; and that broader field implementation is finally within reach.
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