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Gas injection as an alternative option for handling associated gas produced from deepwater oil developments in the Gulf of Mexico

机译:注气是处理墨西哥湾深水石油开发项目产生的伴生气的替代选择

摘要

The shift of hydrocarbon exploration and production to deepwater has resulted in new opportunities for the petroleum industry(in this project, the deepwater depth greater than 1,000 ft) but also, it has introduced new challenges. In 2001,more than 999 Bcf of associated gas were produced from the Gulf of Mexico, with deepwater associated gas production accounting for 20% of this produced gas. Two important issues are the potential environmental impacts and the economic value of deepwater associated gas. This project was designed to test the viability of storing associated gas in a saline sandstone aquifer above the producing horizon. Saline aquifer storage would have the dual benefits of gas emissions reduction and gas storage for future use. To assess the viability of saline aquifer storage, a simulation study was conducted with a hypothetical sandstone aquifer in an anticlinal trap. Five years of injection were simulated followed by five years of production (stored gas recovery). Particular attention was given to the role of relative permeability hysteresis in determining trapped gas saturation, as it tends to control the efficiency of the storage process. Various cases were run to observe the effect of location of the injection/production well and formation dip angle. This study was made to: (1) conduct a simulation study to investigate the effects of reservoir and well parameters on gas storage performance; (2) assess the drainage and imbibition processes in aquifer gas storage; (3) evaluate methods used to determine relative permeability and gas residual saturation ; and (4) gain experience with, and confidence in, the hysteresis option in IMEX Simulator for determining the trapped gas saturation. The simulation results show that well location and dip angle have important effects on gas storage performance. In the test cases, the case with a higher dip angle favors gas trapping, and the best recovery is the top of the anticlinal structure. More than half of the stored gas is lost due to trapped gas saturations and high water saturation with corresponding low gas relative permeability. During the production (recovery) phase, it can be expected that water-gas production ratios will be high. The economic limit of the stored gas recovery will be greatly affected by producing water-gas ratio, especially for deep aquifers. The result indicates that it is technically feasible to recover gas injected into a saline aquifer, provided the aquifer exhibits the appropriate dip angle, size and permeability, and residual or trapped gas saturation is also important. The technical approach used in this study may be used to assess saline aquifer storage in other deepwater regions, and it may provide a preliminary framework for studies of the economic viability of deepwater saline aquifer gas storage.
机译:碳氢化合物勘探和生产向深水的转移为石油工业带来了新的机遇(在该项目中,深水深度大于1,000英尺),但也带来了新的挑战。 2001年,墨西哥湾生产了超过999 Bcf的伴生气,其中深水伴生气的产量占这一产出气的20%。两个重要的问题是潜在的环境影响和深水伴生气的经济价值。该项目旨在测试在生产水平以上的盐水砂岩含水层中储存伴生气的可行性。盐水储层将具有减少气体排放和储气以备将来使用的双重好处。为了评估盐水蓄水层储存的可行性,在假斜井陷阱中对假设的砂岩含水层进行了模拟研究。模拟了五年的注入,然后是五年的生产(储气回收)。特别注意相对渗透率滞后在确定捕集气体饱和度方面的作用,因为它趋于控制存储过程的效率。运行各种情况以观察注入/生产井的位置和地层倾角的影响。进行该研究的目的是:(1)进行模拟研究,以研究储层和井参数对储气性能的影响; (2)评估含水层气体储存中的排水和吸收过程; (3)评估用于确定相对渗透率和气体残余饱和度的方法; (4)获得有关IMEX Simulator中用于确定滞留气体饱和度的磁滞选项的经验并对其充满信心。模拟结果表明,井位和倾角对储气性能有重要影响。在测试案例中,倾斜角较大的案例有利于气体捕集,而最佳的恢复效果是在背斜构造的顶部。由于截留的气体饱和度和高的水饱和度以及相应的较低的气体相对渗透率,导致一半以上的存储气体损失。在生产(回收)阶段,可以预期水煤气的生产率会很高。产生的水气比将极大地影响储气回收的经济极限,特别是对于深层含水层。结果表明,只要该含水层具有适当的倾角,大小和渗透率,并且残留或截留的气体饱和度也很重要,回收注入盐水层中的气体在技术上是可行的。本研究中使用的技术方法可用于评估其他深水地区的盐水储层的储藏,并且可以为研究深水盐水层储气的经济可行性提供初步框架。

著录项

  • 作者

    Qian Yanlin;

  • 作者单位
  • 年度 2004
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
  • 中图分类
  • 入库时间 2022-08-20 19:41:52

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