SAGD生产井ESP无流事件评价

S. Prasad
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引用次数: 1

摘要

本文总结了一个联合行业项目(JIP)的探索阶段的工作,该项目研究了在大量使用ESP生产的蒸汽辅助重力泄油(SAGD)井中观察到的操作不稳定性和“无流”事件,在这些井中,当ESP运行时,流向地面的流体突然停止。这些事件对SAGD作业的影响包括停工和压降降低造成的产量损失、长时间无流作业造成的ESP额外压力、反复关井和重新启动以及一些系统故障。这一探索阶段的主要目标是更好地了解造成无流事件的机制和关键因素,确定可能的缓解措施,这些措施可能涉及井筒轨迹、ESP着陆位置、ESP系统组件设计或操作实践。这项工作是一系列渐进的、相互关联的任务,使用分析模型和计算流体动力学(CFD)相结合,系统地检查ESP完井的组成部分,并缩小主要影响因素的范围。采用该方法是为了评估不稳定性是由于ESP上游、ESP经过、进气口还是泵的初始阶段的流动状况造成的。对于分析的每一步,上游分析的输出边界条件成为相应下游评价的输入边界条件。首先,将一维多相流和多相CFD模型相结合,用于描述ESP下方井侧段和井跟段的流体状况和流动行为。其次,使用CFD模型研究通过ESP电机的流量,以研究电机加热对过冷降低和蒸汽产生的影响。CFD模拟还用于检测流体分离和流入底部给料器ESP进气口的情况,以评估进入ESP的不凝性气体(NCG)的数量,以及通过进气口的压降是否足以引起明显的蒸汽闪蒸。最后,对一个典型的SAGD ESP级进行了分析,使用了一套广泛的分析喘振模型来评估泵的稳定性,考虑到进入泵的气液比例,以及旋转级的CFD模拟。在泵的入口和第一级进行CFD评估的重点是确定在ESP级内是否发生了蒸汽闪烁,以及对该级产生扬程的能力的明显影响。JIP的这个探索阶段的结果表明,由于净正吸头(NPSHr)不足,ESP叶轮内的蒸汽闪烁似乎是导致无流动事件的主要机制之一,而不是NCG或蒸汽从进水口进入泵。该JIP未来的工作包括使用实验室测试数据验证CFD结果,进一步对其他ESP级设计和更广泛的工作条件进行CFD模拟,以及对可能允许在较低过冷度和较低NPSHr值下生产的替代ESP设计进行研究。
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Assessment of ESP No-Flow Events in SAGD Production Wells
This paper summarizes the work of the exploratory phase of a Joint Industry Project (JIP) investigating operational instabilities and ‘no flow’ events observed in a large number of Steam Assisted Gravity Drainage (SAGD) wells produced with ESPs, where, while the ESP is operating, flow to surface suddenly stops. The impact of these events to the SAGD operations has included lost production due to downtime and reduced drawdown, additional stresses to the ESP due to operating without flow for extended periods and repeated shut-downs and restarts and some system failures. The primary objectives of this exploratory phase were to better understand the mechanisms and key factors responsible for these no flow events, to identify possible mitigation actions, which may be in the wellbore trajectory, ESP landing position, ESP system component designs, or operating practices. This work was structured as a series of progressive, inter-related tasks, using a combination of analytical models and Computational Fluid Dynamics (CFD), to systematically examine the components of an ESP completion and to narrow-in on the primary contributing factors. The approach was adopted in an effort to assess if the instabilities were due to flow conditions upstream of the ESP, past the ESP, through the intake or in the initial stages of the pump. For each step of the analysis, the output boundary conditions of an upstream analysis became the input boundary conditions of the corresponding downstream assessment. First, a combination of one-dimensional (1D) multiphase flow and multiphase CFD models were used to characterize the fluid conditions and flow behaviour in the lateral and heel of the well below the ESP. Second, flow past the ESP motor was examined using CFD models to examine the impact of motor heating on subcool reduction and steam vapour generation. CFD simulations were also used to examine fluid separation and flow into a bottom feeder ESP intake to assess the amount of non-condensable gas (NCG) entering the ESP and if the pressure drop through the intake was sufficient to cause significant steam vapour flashing. Finally, a representative SAGD ESP stage was analyzed using both a broad suite of analytical surge models to assess the stability of the pump given the gas-liquid fraction entering the pump, as well as CFD simulations of the rotating stage. The focus of the CFD assessment within the entrance and first stage of the pump was to determine whether vapour flashing was occurring within the ESP stage and the apparent impact on the stage’s ability to generate head. The results from this exploratory phase of the JIP indicated that vapour flashing within the ESP impeller due to insufficient required Net Positive Suction Head (NPSHr) appeared to be one of the dominant mechanisms causing no flow events, as opposed to NCG or steam entering the pump from the intake. Future work for this JIP includes validation of the CFD results using lab test data, further CFD simulations of other ESP stage designs and at a wider range of operating conditions, and examination of alternate ESP designs that may allow for production at lower subcool and lower NPSHr values.
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