首页> 外文会议>International Petroleum Technology Conference >Understanding The Effect Of Rock Fabric On Fracture Complexity For Improving Completion Design And Well Performance
【24h】

Understanding The Effect Of Rock Fabric On Fracture Complexity For Improving Completion Design And Well Performance

机译:了解岩织物对改善完成设计和井性能的裂缝复杂性的影响

获取原文

摘要

In the past, containment of hydraulic fracture height growth has been evaluated based on an assumption of rock formation layers with contrasting conditions of minimum horizontal stress, and to a lesser extent, Young’s modulus, leak off rates, and fracture toughness between adjacent rock layers. Most recently, large-block hydraulic fracturing experiments in the laboratory, and observations of fracture propagation (natural or induced) in core, have provided evidence that the rock fabric plays a significant role in arresting fracture height growth and also in promoting fracture complexity. In addition, unconventional reservoirs are often over-pressured. And, as the pore pressure increases, the stress contrast tends to be reduced, and the role of rock fabric becomes dominant. In this paper, we investigate the effect of weak interfaces on fracture geometry and height containment by conducting hydraulic fracturing tests on large blocks from tight shale outcrops, under simulated effective stress conditions. We define rock fabric as the presence, orientation and distribution of bed boundaries, lithologic contacts, mineralized fractures, and other type of weak interfaces. This rock fabric creates discontinuities in the stress and strain fields and affects the way the rock deforms and fails. Continuous monitoring of acoustic emissions and using acoustic transmission during fracturing, allows understanding the process of fracture initiation and fracture interaction with the weak interfaces. Post-test CT x-ray scanning and detailed dissection and photographic imaging provide a good record of the fractures. In addition, these post fracture measurements allow comparing the fractures created with results from acoustic emissions localization. The experimental results clearly demonstrate the importance of rock fabric to understand and predict fracture complexity and fracture height containment.
机译:过去,基于岩层层的假设,对岩层层的假设进行了评估了液压骨折高度生长的遏制,并且在较小程度上,较小的模量,泄漏速度和相邻岩层之间的断裂韧性。最近,在实验室中的大块液压压裂实验以及核心骨折繁殖(自然或诱导)的观察,提供了证据表明,岩石面料在阻止骨折高度增长和促进骨折复杂性方面发挥着重要作用。此外,非常规储层通常被过度压力。并且,随着孔隙压力的增加,应力对比趋于降低,并且岩石织物的作用变得优势。在本文中,我们通过在模拟有效应力条件下,通过在大型物质露头的大块上进行液压压裂试验来研究弱界面对断裂几何和高度遏制的影响。我们将岩石结构定义为床边界,岩性接触,矿化骨折等类型的弱界面的存在,方向和分布。该岩石面料在压力和应变场中产生不连续性,并影响岩石变形和失败的方式。持续监测压裂过程中的声学排放和使用声学传输,允许了解与弱界面的断裂引发和断裂相互作用的过程。测试后CT X射线扫描和详细解剖和摄影成像提供了良好的裂缝记录。此外,这些后骨折测量允许比较用声排放定位产生的结果产生的裂缝。实验结果清楚地证明了岩面形理解和预测断裂复杂性和裂缝高度遏制的重要性。

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