确定深层致密砂岩气藏水力压裂处理的射孔位置

Kaiming Xia , Weihua Wang , Yufeng Cui
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引用次数: 0

摘要

压裂起始一直是深层致密气藏压裂过程中的一个挑战性问题,因为水力压裂处理通常需要很高的破裂压力。在这种情况下,经常需要在一开始就终止注入流体。为了预测和解决这一问题,我们开发了一种用于深层致密砂岩气藏的新型压裂系统。将介绍压裂系统的主要组成部分和一些标准,这些标准可用于优化着陆部分的理想射孔位置,并据此选择正确的射孔策略。压裂系统的主要组成部分包括(1) 评估基于测井的成岩类型和流动指数;(2) 一维地球力学模型;(3) 计算着陆部分井轨迹的击穿压力包络;(4) 计算着陆部分的最佳射孔方向;(5) 根据基于测井的成岩类型和流动指数选择第一组射孔位置;(6) 根据击穿压力包络,将第一组射孔位置缩小到第二组射孔位置; (7) 根据第二组射孔位置的击穿压力包络和井口压力安全限值,确定射孔策略。计算击穿压力包络和最佳射孔方向的计算框架适用于任意井轨迹。该压裂系统已被用于为深层致密砂岩储层中的油井提供压裂前建议,这对于确定岩石类型良好且击穿压力相对较低的位置非常有效。此外,它还能指出是否应进一步使用定向射孔来缓解击穿问题。通过这些努力和程序,可以提高深层致密砂岩气藏的压裂成功率,这一点已在实践中得到验证。现场实例研究将证明压裂系统的性能和适用性。
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Identifying perforation locations for hydraulic fracturing treatment in deep and tight sandstone gas reservoirs

Fracture initiation has been a challenging issue for fracturing deep and tight gas reservoirs, which generally requires a high breakdown pressure for hydraulic fracturing treatment. In this situation, fluid injections frequently have to terminate at the very beginning. Toward predicting and solving this issue, a novel fracturing system for deep and tight sandstone gas reservoirs was developed. The key components of the fracturing system and some criterion will be introduced, which can be used to optimize the ideal perforation locations along the landing part and select the right perforation strategy accordingly. The main components of the fracturing system include: (1) evaluating the log-based diagenetic rock typing and flow index; (2) 1D mechanical earth model; (3) calculating the breakdown pressure envelope along the well trajectory of the landing part; (4) calculating the optimal perforation directions along the landing part; (5) select the first set of perforation locations based on the log-based diagenetic rock typing and flow index; (6) narrowing down the first set of perforation locations to a second set of perforation locations based on the breakdown pressure envelope; (7) determining a perforation strategy based on breakdown pressure envelope and wellhead pressure safety limit in the second set of perforation locations. The computational framework to calculate the breakdown pressure envelope and optimal perforation directions is applicable to arbitrary well trajectory. The fracturing system has been used to provide pre-fracturing suggestions for wells landed in deep and tight sandstone reservoirs, which is very efficient for identifying locations with good rock typing and relatively low breakdown pressure. Also, it can indicate whether oriented perforation should be used further for alleviating breakdown issue. By taking these efforts and procedures, the fracturing success rate for deep and tight sandstone gas reservoirs can be improved, which has been verified in practice. Example studies from the field will be provided to demonstrate the fracturing system's performance and applicability.

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