“一种改良酸体系增强碳酸盐基质酸化:实验研究”的决定函

D. Zhu, Julian Uribe, Daniel Sohn, D. Hill, A. Ugursal, C. Shuchart, Clay Purdy, M. Weissenberger
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引用次数: 5

摘要

在碳酸盐岩基质酸化中,在最佳条件下(vi,opt和PVBT,opt)虫孔扩展所需的空隙速度和孔隙体积是关键设计参数。这两个参数是由地层岩石性质决定的,包括渗透率、孔隙度、温度、压力、矿物学以及将要使用的酸体系。盐酸是碳酸盐岩酸化中最常用的酸。然而,使用强HCl溶液建立虫孔的效率有时很低,因为无法达到最佳虫孔扩展所需的注入速度,特别是当应用于长完井段和/或低渗透率碳酸盐岩时。高浓度的盐酸溶液也会引起安全和环境问题。当使用缓速酸体系来克服这些挑战时,酸增产的效率往往受到低反应速率和低溶解力的影响。本研究介绍了一种改良酸体系的测试结果,该体系具有控制反应速率和良好的虫孔传播特性,特别是在低间隙速度下。由于这些改性酸体系中使用的活化能垒垒增加,因此可以根据完井方法和地层规格控制氢质子的反应速率并优化虫孔效果。单相改性酸体系适用于石灰石和白垩地层。通过室内线性岩心驱油实验和喷酸实验,研究了新型酸体系的虫孔效率。岩心注水试验旨在生成虫孔效率曲线,并在相同条件下将试验结果与盐酸进行比较。通过喷射实验对空腔和虫孔发育结构进行了评价,并与相同条件下的HCl注入结果进行了比较。实验研究的结果通过虫孔效率曲线和酸溶解结构的CT扫描来比较酸体系。实验结果表明,改性酸体系具有明显的优越性。与具有相当溶解力的HCl相比,改性酸具有相似或更好的虫孔效率参数。当与酸喷相结合时,进一步改善了低渗透石灰岩的虫孔生长。与盐酸相比,除了最大限度地减少危险暴露水平、腐蚀速率和负HS&E特性外,新酸体系还具有增溶能力和反应速率的积极方面,从而改善了最佳虫孔条件(较低的vi、opt和PVBT、opt)。这有可能在减少钻井液需求的情况下获得更好的增产效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Decision letter for "A modified acid system to enhance carbonate matrix acid stimulation: An experimental study"
In carbonate matrix acidizing, the critical design parameters are interstitial velocity and pore volume to breakthrough for wormhole propagation at the optimal condition (vi,opt and PVBT,opt). These two parameters are determined by the formation rock properties including permeability, porosity, temperature, pressure, and mineralogy, and the acid system that will be used. HCl has been the most commonly used acid in carbonate acidizing. However, the efficiency of wormhole creation using strong HCl solutions is sometimes low because the injection rate needed for optimal wormhole propagation is not attainable, especially when applied to long completion intervals and/or low permeability carbonates. High concentration HCl solutions also raise safety and environmental concerns. When retarded acid systems are used to overcome these challenges, the efficiency of acid stimulation often suffers from low reaction rate and low dissolving power. This study presents testing results of a modified acid system that has controlled reaction rate with favorable wormhole propagation characteristics, especially at low interstitial velocities. Due to the increased activation energy barriers utilized in these modified-acid systems, it is possible to control the reaction rate of the hydrogen proton and optimize the wormholing effect based on the completion method and formation specifications. Single phase modified acid systems are applicable and can be tailored for limestone and chalk formations. Laboratory linear core flooding experiments and acid jetting experiments were conducted to study the wormhole efficiency with the new acid systems. Core flood tests were designed to generate the wormhole efficiency curves and compare the results from the tests with HCl under the same conditions. Jetting experiments were conducted to evaluate the structure of cavity and wormhole development, and the results were also compared with HCl injection at similar conditions. Results from the experimental study were then used to compare the acid systems through wormhole efficiency curves and CT scans of acid dissolution structures. The experimental results showed clear advantages of the modified acid systems. The modified acids have similar or better wormhole efficiency parameters compared with HCl having comparable dissolving power. When combined with acid jetting, further improvement in wormhole growth in low permeability limestone is achieved. In addition to minimizing the hazardous exposure levels, corrosion rates, and negative HS&E properties compared with hydrochloric acid, the new acid system provides the positive aspects of solubilizing ability and reaction rates thus improving optimal wormhole conditions (lower vi,opt and PVBT,opt). This potentially allows for better stimulation results with less fluid required.
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