Finding the Best of the Best: Hydraulic Fracturing Design Optimization Study in Oman

R. Kayumov, A. Al Shueili, M. Jaboob, Hussain Al Salmi, R. Trejo, R.. Al Shidhani
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Abstract

Development of the tight gas Khazzan Field in Sultanate of Oman has progressed through an extensive learning curve over many years. Thereby, the hydraulic fracturing design was fine-tuned and optimized to properly fit the requirements of the challenging Barik reservoir in this area. In 2018, BP Oman started developing the Barik reservoir in the Ghazeer Field, which naturally extends the reservoir boundary south of Khazzan Field. However, the Barik reservoir in the Ghazeer area is thicker and more permeable than in the Khazzan Field; therefore, the hydraulic fracturing design required adjustment to be optimized to directly reflect the reservoir needs of the Ghazeer Field. A comprehensive hydraulic fracturing design software was used for this optimization study and sensitivity analysis. This software is a plug-in to a benchmark exploration and production software platform and provides a complete fracturing optimization loop from hydraulic fracturing design sensitivity modelled with a calibrated mechanical earth model to detailed production prediction using the incorporated reservoir simulator. One of the stimulated wells from Ghazeer Field was used as the reference for this study. The reservoir sector model was created and adjusted to match actual data from this well. The data include fracturing treatment execution response, surveillance data such as radioactive tracers, bottomhole pressure gauge, and pressure transient analysis. Reservoir properties were also adjusted to match long-term production data obtained for this reference well. After the reservoir model was fully validated against actual data, multiple completion and fracturing scenarios were simulated to estimate potential production gain and thus find an optimal hydraulic fracturing design for Ghazeer Field. Many valuable outcomes can be concluded from this study. The optimal treatment design was identified. The value of fracture half-length versus conductivity was clarified for this area. The comparison between single-stage fracturing versus multistage treatment across the thick laminated Barik reservoir in a conventional vertical well was derived. The drainage of different layers with variable reservoir properties was compared for a range of different scenarios.
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在优中求优:阿曼水力压裂设计优化研究
多年来,阿曼苏丹国Khazzan致密气气田的开发取得了广泛的进展。因此,对水力压裂设计进行了微调和优化,以适当适应该地区具有挑战性的Barik油藏的要求。2018年,BP阿曼开始开发Ghazeer油田的Barik油藏,该油藏自然地延伸了Khazzan油田以南的油藏边界。然而,Ghazeer地区的Barik储层比Khazzan油田更厚,渗透率更高;因此,水力压裂设计需要进行优化调整,以直接反映Ghazeer油田的储层需求。采用综合水力压裂设计软件进行优化研究和敏感性分析。该软件是基准勘探和生产软件平台的插件,提供了一个完整的压裂优化循环,从使用校准的机械地球模型建模的水力压裂设计灵敏度到使用集成的油藏模拟器进行详细的生产预测。以Ghazeer油田的一口改造井为例进行了研究。建立并调整了储层区域模型,以匹配该井的实际数据。这些数据包括压裂处理执行响应、监测数据(如放射性示踪剂)、井底压力表和压力瞬态分析。油藏性质也进行了调整,以匹配该参考井获得的长期生产数据。在根据实际数据对储层模型进行充分验证后,对多个完井和压裂方案进行了模拟,以估计潜在的产量增益,从而找到Ghazeer油田的最佳水力压裂设计。本研究可得出许多有价值的结论。确定了最佳处理方案。明确了该地区裂缝半长与导电性的关系。在常规直井中,对Barik厚层状储层进行了单段压裂与多级压裂的比较。对比了不同储层性质的不同层在不同情况下的排水性。
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