首页> 外文会议>SPE Middle East Oil and Gas Show and Conference >Reservoir Depletion-Induced Proppant Embedment and Dynamic Fracture Closure
【24h】

Reservoir Depletion-Induced Proppant Embedment and Dynamic Fracture Closure

机译:储层耗尽诱导的支撑剂嵌入和动态断裂闭合

获取原文
获取外文期刊封面目录资料

摘要

An optimized stimulation design not only achieves high productivity during early times, but also necessitates maintaining conductive flow paths during the life of a well. Because of proppant settling and bridging, proppants are not uniformly distributed within developed fracture networks. Moreover, no fractures retain original conductivity during long term depletion, due to proppant embedment and crushing. This paper introduces a model that analytically predicts the proppant deformation and fracture closure behavior, and forecasts production performance. This model is based on contact mechanics to simulate the mechanical interaction between the proppant pack and formation rock. The fracture aperture can be calculated and updated by taking into account the proppant concentration, non-uniform proppant distribution and in-situ stress conditions. The proppant pack permeability is analytically modelled according to its mechanical properties (size and density) and effective normal stress acting on the fracture surface. In this way, the fracture conductive variation caused by reservoir depletion can be quantified and imported into a reservoir model to forecast production. This paper presents a new analytical model to describe dynamic fracture closure and its impact on production performance, which varies significantly with the proppant mechanical properties, proppant concentration, proppant distribution, stress condition and formation types. Under different conditions, conductivity evolution of propped fractures can be obtained from the presented model and matched well with multiple experimental tests. Sensitivity of proppant properties, reservoir attributes, and operational parameters are discussed in this study. Production results from these sensitivity analyses can be used to compare and contrast different design scenarios. This model enables an efficient and reliable prediction of the fracture dynamic closure behavior and identification of controlling parameters to mitigate premature fracture closure. This model honors heterogeneous proppant distribution and related fracture closure, and hence captures more realistic reservoir performance. By integrating stress-dependent fracture conductivity and production analysis in this model, an operational guideline can be provided to maximize the productivity of fractured formations.
机译:优化的刺激设计不仅在早期达到高生产率,而且需要在井的寿命期间保持导电流动路径。由于支撑剂沉降和桥接,支撑剂在发育的骨折网络中并不均匀分布。此外,由于支撑剂嵌入和破碎,在长期耗尽期间没有裂缝保持原始电导率。本文介绍了一种分析预测支撑剂变形和断裂闭合行为的模型,并预测生产性能。该模型基于接触机构来模拟支撑剂包和地层岩石之间的机械相互作用。可以通过考虑支撑剂浓度,不均匀的支撑剂分布和原位应力条件来计算和更新裂缝孔。 PEPPant包装渗透性根据其机械性能(尺寸和密度)和作用于裂缝表面的有效正常应力进行了分析模拟。以这种方式,可以量化由储层耗尽引起的骨折导电变化,并进入储层模型以预测生产。本文介绍了一种新的分析模型,用于描述动态断裂闭合及其对生产性能的影响,随着支撑剂机械性能,支撑剂浓度,支撑剂分布,应力条件和地层类型而异。在不同的条件下,可以从所提出的模型获得支撑骨折的电导率演化,并匹配多种实验测试。本研究讨论了支撑物属性,储层属性和操作参数的敏感性。这些灵敏度分析的生产结果可用于比较和对比不同的设计方案。该模型使得能够高效可靠地预测裂缝动态闭合行为和控制参数的识别,以减轻过早断裂闭合。该模型荣誉异质支撑剂分布及相关骨折闭合,因此捕捉更现实的储层性能。通过在该模型中积分应力依赖性断裂电导率和生产分析,可以提供操作指南以最大限度地提高裂缝形成的生产率。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号