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An evaluation method of volume fracturing effects for vertical wells in low permeability reservoirs

机译:低渗透油藏垂直井体积压裂效果评价方法

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摘要

To evaluate the fracturing effect and dynamic change process after volume fracturing with vertical wells in low permeability oil reservoirs, an oil-water two-phase flow model and a well model are built. On this basis, an evaluation method of fracturing effect based on production data and fracturing fluid backflow data is established, and the method is used to analyze some field cases. The vicinity area of main fracture after fracturing is divided into different stimulated regions. The permeability and area of different regions are used to characterize the stimulation strength and scale of the fracture network. The conductivity of stimulated region is defined as the product of the permeability and area of the stimulated region. Through parameter sensitivity analysis, it is found that half-length of the fracture and the permeability of the core area mainly affect the flow law near the well, that is, the early stage of production;while matrix permeability mainly affects the flow law at the far end of the fracture. Taking a typical old well in Changqing Oilfield as an example, the fracturing effect and its changes after two rounds of volume fracturing in this well are evaluated. It is found that with the increase of production time after the first volume fracturing, the permeability and conductivity of stimulated area gradually decreased, and the fracturing effect gradually decreased until disappeared;after the second volume fracturing, the permeability and conductivity of stimulated area increased significantly again.
机译:在低渗透油储存器中使用垂直井压裂后的压裂效果和动态变化过程,建造了油水两相流模型和井模型。在此基础上,建立了基于生产数据和压裂流体回流数据的压裂效果的评估方法,并且该方法用于分析一些现场情况。压裂后主要骨折的附近区域分为不同的刺激区域。不同地区的渗透率和面积用于表征裂缝网络的刺激强度和规模。刺激区域的电导率定义为刺激区域的渗透性和面积的产物。通过参数敏感性分析,发现核心区域的半长度和核心区域的渗透性主要影响井附近的流量法,即生产早期阶段;而矩阵渗透性主要影响流动法骨折的远端。在长庆油田采取典型的旧井作为一个例子,评估了在这井中两轮体积压裂后的压裂效果及其变化。结果发现,随着第一次体积压裂后生产时间的增加,刺激面积的渗透率和电导率逐渐降低,压裂效果逐渐降低直至消失;在第二卷压裂后,刺激面积的渗透率和电导率显着增加再次。

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  • 来源
    《石油勘探与开发:英文版》 |2020年第002期|P.441-448|共8页
  • 作者单位

    Research Institute of Petroleum Exploration&Development PetroChina Beijing 100083 China;

    Research Institute of Petroleum Exploration&Development PetroChina Beijing 100083 ChinaInstitute of Porous Flow and Fluid Mechanics University of Chinese Academy of Sciences Langfang 065007 China;

    Research Institute of Petroleum Exploration and Development PetroChina Xinjiang Oilfield Company Karamay 834000 China;

    Research Institute of Petroleum Exploration&Development PetroChina Beijing 100083 ChinaInstitute of Porous Flow and Fluid Mechanics University of Chinese Academy of Sciences Langfang 065007 China;

    Research Institute of Petroleum Exploration&Development PetroChina Beijing 100083 ChinaInstitute of Porous Flow and Fluid Mechanics University of Chinese Academy of Sciences Langfang 065007 China;

    Research Institute of Petroleum Exploration&Development PetroChina Beijing 100083 ChinaInstitute of Porous Flow and Fluid Mechanics University of Chinese Academy of Sciences Langfang 065007 China;

    Research Institute of Petroleum Exploration&Development PetroChina Beijing 100083 ChinaInstitute of Porous Flow and Fluid Mechanics University of Chinese Academy of Sciences Langfang 065007 China;

    Research Institute of Petroleum Exploration&Development PetroChina Beijing 100083 ChinaInstitute of Porous Flow and Fluid Mechanics University of Chinese Academy of Sciences Langfang 065007 China;

    Research Institute of Petroleum Exploration&Development PetroChina Beijing 100083 ChinaInstitute of Porous Flow and Fluid Mechanics University of Chinese Academy of Sciences Langfang 065007 China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 提高采收率与维持油层压力(二次、三次采油);
  • 关键词

    volume fracturing; fracturing effect evaluation; fracturing area; conductivity; low permeability reservoir; vertical well;

    机译:体积压裂压裂效果评价压裂面积电导率低渗透储层垂直井;
  • 入库时间 2022-08-19 04:45:44
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