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Experimental and numerical investigation of the Fast-SAGD process.

机译:Fast-SAGD过程的实验和数值研究。

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The SAGD process has been tested in the field, and is now in a commercial stage in Western Canadian oil sands areas. The Fast-SAGD method can partly solve the drilling difficulty and reduce costs in a SAGD operation requiring paired parallel wells one above the other. This method also enhances the thermal efficiency in the reservoir.; In this research, the reservoir parameters and operating conditions for the SAGD and Fast-SAGD processes are investigated by numerical simulation in the three Alberta oil sands areas. Scaled physical model experiments, which are operated by an automated process control system, are conducted under high temperature and high pressure conditions.; The results of the study indicate that the shallow Athabasca-type reservoir, which is thick with high permeability (high kxh), is a good candidate for SAGD application, whereas Cold Lake- and Peace River-type reservoirs, which are thin with low permeability, are not as good candidates for conventional SAGD implementation.; The simulation results indicate improved energy efficiency and productivity in most cases for the Fast-SAGD process; in those cases, the project economics were enhanced compared to the SAGD process. Both Cold Lake- and Peace River-type reservoirs are good candidates for a Fast-SAGD application rather than a conventional SAGD application. This new process demonstrates improved efficiency and lower costs for extracting heavy oil from these important reservoirs.; A new economic indicator, called simple thermal efficiency parameter (STEP), was developed and validated to evaluate the performance of a SAGD project. STEP is based on cumulative steam-oil ratio (CSOR), calendar day oil rate (CDOR) and recovery factor (RF) for the time prior to the steam-oil ratio (SOR) attaining 4. STEP can be used as a financial metric quantitatively as well as qualitatively for this type of thermal project.; An automated process control system was set-up and validated, and has the capability of controlling and handling steam injection processes like the steam-assisted gravity drainage process.; The results of these preliminary experiments showed the overall cumulative oil production to be larger in the Fast-SAGD case, but end-point CSOR to be lower in the SAGD case. History matching results indicated that the steam quality was as low as 0.3 in the SAGD experiments, and even lower in the Fast-SAGD experiments after starting the CSS.
机译:SAGD工艺已经在现场进行了测试,现在在加拿大西部油砂地区处于商业阶段。快速SAGD方法可以部分解决钻探困难并降低SAGD作业的成本,因为SAGD作业需要成对的平行井。这种方法还可以提高储层的热效率。在这项研究中,通过数值模拟在三个艾伯塔省油砂地区研究了SAGD和Fast-SAGD工艺的储层参数和运行条件。规模化的物理模型实验是在高温高压条件下进行的,该实验由自动化过程控制系统进行。研究结果表明,较浅的阿萨巴斯卡型储层较厚,具有高渗透率(高kxh),是SAGD应用的良好选择,而冷湖型和和平河型储层较薄而低渗透性,不适合采用常规的SAGD。仿真结果表明,在大多数情况下,Fast-SAGD工艺可提高能源效率和生产率。在这种情况下,与SAGD流程相比,项目经济性得到了提高。冷湖型和和平河型水库都是快速SAGD应用而不是常规SAGD应用的理想选择。这种新工艺证明了从这些重要油藏中提取重油的效率提高了,成本降低了。开发并验证了一种新的经济指标,即简单热效率参数(STEP),以评估SAGD项目的绩效。 STEP基于达到汽油比(SOR)之前4的时间的累计汽油比(CSOR),日历日油率(CDOR)和采收率(RF)。STEP可以用作财务指标这种类型的热力工程在数量上和质量上都是如此。建立并验证了一个自动过程控制系统,该系统具有控制和处理蒸汽注入过程(如蒸汽辅助重力排放过程)的能力。这些初步实验的结果表明,在Fast-SAGD情况下,总体累计产油量较大,但在SAGD情况下,终点CSOR较低。历史匹配结果表明,在启动CSS后,SAGD实验中的蒸汽质量低至0.3,而在Fast-SAGD实验中甚至更低。

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