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Model, Measure, and Optimize Fluid Placement in Formations With Reservoir Pressure Heterogeneities

机译:模型,测量和优化具有储层压力异质性的地层中的流体放置

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In matrix stimulation and injection treatments for removing or preventing formation damage, correct placement of the injected fluids is essential. Throughout the years, several diversion and placement techniques have been applied to obtain a desired fluid placement. These techniques are needed to overcome natural or artificially created heterogeneities. One of these heterogeneities is reservoir pressure. When barriers between the formation layers exist, the layers can have significant pressure depletion caused by production or can be overpressurized because of water flooding. To treat the layers with elevated reservoir pressures is challenging; however, they are often the target areas of a treatment. Another challenge is that during the shut-in period following the treatment, crossflow in the wellbore can be expected, which can cause undesired fluid movement. To understand and quantify the challenges related to pressure heterogeneities, the fluid placement and crossflow in the wellbore for treatments in formations with pressure heterogeneities have been modeled. A fluid-placement simulator that has the ability to include heterogeneities in pressure was used. In addition, the effect of fluid placement with the use of distributed temperature surveys (DTS) and single-point bottomhole pressure were measured. The advanced measurement techniques were used to both monitor the placement of the fluids during the treatment and identify the crossflow in the wellbore after the treatment was finished. These measurements provided fascinating results and provided the insight that, in about 50% of the monitored wells, crossflow could be identified up to flow rates that exceeded 1 bbl/min. In addition, the pore pressure in the high-pressure zones could be determined by measuring the wellbore pressures when the crossflow started. This paper discusses several case histories where the fluid placement during the treatment and the post-treatment shut-in were measured and modeled. Furthermore, techniques that can be used to optimize the fluid placement in formations with significant reservoir-pressure heterogeneities and which techniques are less useful are discussed.
机译:在用于去除或防止形成损伤的基质刺激和注射处理中,正确放置注入的流体是必不可少的。全年,已经应用了几种转移和放置技术来获得所需的流体放置。需要这些技术来克服自然或人工创造的异质性。这些异质性之一是储层压力。当存在形成层之间的屏障时,层可以具有由生产引起的显着的压力耗尽,或者由于水泛水,可以过度地进行。对储层压力升高的层进行挑战;然而,它们通常是治疗的目标领域。另一个挑战是,在处理后的关闭期间,可以预期井筒中的横流,这可能导致不希望的流体运动。为了理解和量化与压力异质性有关的挑战,已经建模了井眼中的井眼中的流体放置和交叉流量。使用能够在压力下包括异质性的流体放置模拟器。另外,测量了流体放置与使用分布式温度调查(DTS)和单点底孔压力的效果。先进的测量技术用于监测处理期间流体的放置,并在处理完成后识别井筒中的横流。这些测量提供了令人迷人的结果,并提供了在约50%的监测井中的洞察力,可以识别横流,以达到超过1 BBL / min的流速。另外,可以通过测量交叉流动开始时测量井筒压力来确定高压区域中的孔隙压力。本文讨论了几种情况历史,其中测量和建模处理处理过程中的流体放置和后处理。此外,可以用于优化具有显着的储层 - 压力异质性的地层中的流体放置的技术,并且讨论了哪种技术不太有用。

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