高含水势层可控渗透率重复压裂技术研究与应用

M. Qi, E. Yang, Y. Liu, C. Dong, X. Chen
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摘要

扶余油田是典型的浅层、低温、低渗透油藏。目前该油田复合含水率为95%,人工裂缝与天然裂缝交错,井间无效循环通道分布复杂。本文通过数值模拟发现,在降低原裂缝渗透率后,重复压裂可以有效提高新裂缝的纵向延伸范围。为此,研究了一种可控渗透率暂堵剂,提出了可控渗透率重复压裂技术。可控渗透率暂堵体系由弹性颗粒、石英砂、速溶性弹性增强剂组成,以弹性颗粒为基础,不老化,可实现长期封堵。通过物理实验,以不同比例(即5:5,6:4,7:3)使用0.5 - 1 mm弹性颗粒,70-140目石英砂和16-30目石英砂。根据压裂层的闭合压力和渗透率,建立了弹性颗粒与石英砂的比值图。可控渗透率重复压裂技术可以根据闭合压力和压裂层渗透率控制要求,选择石英砂与弹性颗粒的配比。通过现场应用发现,与常规重复压裂技术相比,单井平均日产液量由5.0吨降至3.9吨,日产油量由0.3吨提高至0.6吨。可控渗透率压裂技术可以降低原有裂缝的渗透率,提高重复压裂后储层的垂向生产程度。此外,该方法保证了原有裂缝具有一定的导流能力,且不因临时堵剂而损失高渗层储量,从而扩大了平面波及体积,有效提高了油藏采收率。但本文建立的图主要适用于浅层储层,封闭压力为3 ~ 15 MPa。深层储层需要进一步的测试和研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research and Application of a Controllable Permeability Refracturing Technology in a High-Water-Cut Potential Layer
The Fuyu oil field is a typical shallow, low-temperature, low-permeability reservoir. At present, the oilfield composite water cut is 95%, artificial fractures interlace with natural fractures, and the distribution of ineffective circulation channels between wells is complex. This paper found that after reducing the permeability of the original fracture, refracturing can effectively improve the longitudinal extension range of the new fracture through numerical simulation. Therefore, a controllable permeability temporary plugging agent is studied, and controllable permeability refracture technology is proposed. The controllable permeability temporary plugging system is composed of elastic particles, quartz sand, and quick-soluble elastic enhancers, which are based on elastic particles that do not age, and long-term plugging can be achieved. Through physical experiments, 0.5–1-mm elastic particles with 70–140 mesh and 16–30 mesh quartz sand were used in different ratios (i.e., 5:5, 6:4, and 7:3). According to the closure pressure and the permeability of the fracturing layer, the ratio chart of elastic particles and quartz sand is established. The controllable permeability refracture technology can select the ratio of the quartz sand and elastic particles according to the closure pressure and the control requirements of the fracturing horizon permeability. Through field applications, we found that, compared with the conventional refracturing technology, the average daily fluid gain per well decreased from 5.0 to 3.9 tons, and the daily oil gain increased from 0.3 to 0.6 tons. The controllable permeability fracturing technology could reduce the permeability of the original fracture and improve the vertical production degree of the reservoir after refracturing. In addition, this method ensures that the original fracture has a certain conductivity and that the high-permeability layer reserves are not lost due to temporary plugging agents, thus expanding the planar sweep volume and effectively improving reservoir recovery. Nevertheless, the chart established is mainly suitable for shallow reservoirs, and the closure pressure is 3–15 MPa in this paper. Further testing and research are needed for deep reservoirs.
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