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Evaluation of the relationship between fracture conductivity, fracture fluid production, and effective fracture length.

机译:评估裂缝电导率,裂缝液产量和有效裂缝长度之间的关系。

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摘要

Low-permeability gas wells often produce less than predicted after a fracture treatment. One of the reasons for this is that fracture lengths calculated after stimulation are often less than designed lengths. While actual fracture lengths may be shorter due to fracture growth out of zone, improper proppant settling, or proppant flowback, short calculated fracture lengths can also result from incorrect analysis techniques. It is known that fracturing fluid that remains in the fracture and formation after a hydraulic fracture treatment can decrease the productivity of a gas well by reducing the relative permeability to gas in the region invaded by this fluid. However, the relationships between fracture fluid cleanup, effective fracture length, and well productivity are not fully understood.;In this work I used reservoir simulation to determine the relationship between fracture conductivity, fracture fluid production, effective fracture length, and well productivity. I simulated water saturation and pressure profiles around a propped fracture, tracked gas production along the length of the propped fracture, and quantified the effective fracture length (i.e., the fracture length under single-phase flow conditions that gives similar performance as for multiphase flow conditions), the "cleanup" fracture length (i.e., the fracture length corresponding to 90% cumulative gas flow rate into the fracture), and the "apparent" fracture length (i.e., the fracture length where the ratio of multiphase to single-phase gas entry rate profiles is unity).;This study shows that the proppant pack is generally cleaned up and the cleanup lengths are close to designed lengths in relatively short times. Although gas is entering along entire fracture, fracturing fluid remains in the formation near the fracture. The water saturation distribution affects the gas entry rate profile, which determines the effective fracture length. Subtle changes in the gas rate entry profile can result in significant changes in effective fracture length. The results I derived from this work are consistent with prior work, namely that greater fracture conductivity results in more effective well cleanup and longer effective fracture lengths versus time. This study provides better explanation of mechanisms that affect fracturing fluid cleanup, effective fracture length, and well productivity than previous work.
机译:低渗透气井通常在压裂后产量低于预期。原因之一是增产后计算出的裂缝长度通常小于设计长度。尽管实际裂缝长度可能会因裂缝超出区域增长,支撑剂沉降不当或支撑剂回流等原因而变短,但计算不正确的裂缝长度也会因分析技术不正确而导致。已知在水力压裂处理之后保留在裂缝和地层中的压裂液可通过减小被该流体侵入的区域中对气体的相对渗透率而降低气井的生产率。但是,对于压裂液清理,有效压裂长度和油井产能之间的关系尚未完全理解。在这项工作中,我使用油藏模拟来确定压裂电导率,压裂液产量,有效压裂长度和油井产能之间的关系。我模拟了支撑裂缝周围的水饱和度和压力剖面,沿着支撑裂缝的长度跟踪了天然气的产生,并量化了有效裂缝长度(即,在单相流动条件下的裂缝长度,其性能与多相流动条件相似) ),“清理”裂缝长度(即对应于累积进入裂缝的气体流量的90%的裂缝长度)和“表观”裂缝长度(即多相与单相气体之比的裂缝长度)入口速率分布是统一的)。该研究表明,支撑剂包通常已清理完毕,清理长度在较短时间内接近设计长度。尽管气体沿整个裂缝进入,但压裂液仍保留在裂缝附近的地层中。水饱和度分布会影响气体进入速率曲线,从而确定有效裂缝长度。气速进入曲线的细微变化可导致有效裂缝长度的显着变化。我从这项工作得出的结果与先前的工作是一致的,即更大的裂缝导流率导致更有效的井清理和更长的有效裂缝长度随时间变化。与以前的工作相比,这项研究为影响压裂液净化,有效压裂长度和油井产能的机理提供了更好的解释。

著录项

  • 作者

    Lolon, Elyezer P.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Engineering Petroleum.;Energy.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 138 p.
  • 总页数 138
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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