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A Systematic Approach to Design and Development of a New ICD to Minimize Erosion and Erosion-Corrosion

机译:一种系统的设计和开发新ICD,以最大限度地减少侵蚀和侵蚀腐蚀的方法

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To prevent or minimize problems associated with water coning in horizontal oil producers, inflow control devices (ICDs) are installed along the wellbore to better equalize the toe-to-heel flux. Nozzle-based ICDs are popular because they are: 1) easy to model accurately, 2) virtually viscosity independent, and 3) easy to install at the wellsite with many unique settings. Nozzles can be installed either in the wall of the base pipe (radial orientation) or in the annulus between the base pipe and housing (axial orientation). The advantages of the former are: 1) smaller max running OD, and 2) no need for a leak-tight, pressure-rated housing. One disadvantage is the high exit velocity that raises concern of erosion or erosion-corrosion of the basepipe. To overcome this disadvantage, a new nozzle had been developed with a novel geometry that reduces the exit velocity about ten-fold compared to a conventional nozzle for the same pressure drop and flow rate. Computational fluid dynamics (CFD) was used to first fine tune the design to meet strict erosion-corrosion prevention requirements on the wall shear stress downstream of the nozzle for both production and (acid) injection directions, and then to develop flow performance curves for four different nozzles “sizes” that vary in their choking ability, thereby allowing many unique settings per joint at the wellsite. Full scale prototype manufacturing and flow loop testing were then performed to validate the CFD flow performance predictions and to demonstrate mechanical integrity and erosion resistance for high rate production and injection. The results, as presented herein, demonstrate a robust and commercially viable ICD design that: 1) has predictable flow performance using CFD, 2) minimizes erosion and erosion-corrosion in either direction, 3) minimizes running OD, 4) simplifies the housing design, and 5) allows easy installation at the wellsite with 34 unique settings per joint. Also discussed are two new advantages over other ICDs that were not anticipated in the original development.
机译:为了防止或最小化水平石油生产商中的水锥体相关的问题,流入控制装置(ICD)沿着井筒安装以更好地均衡脚趾通量。基于喷嘴的ICD是流行的,因为它们是:1)易于模型,2)几乎粘度独立,3)易于安装在营业仪上有许多独特的设置。喷嘴可以安装在基管(径向方向)的壁中或在基管和壳体(轴向取向)之间的环形墙壁。前者的优点是:1)最大运行OD,2)不需要泄漏,压力额定壳体。一种缺点是高出速度,从而提高了基础侵蚀或侵蚀腐蚀的关注。为了克服这个缺点,已经开发了一种新的喷嘴,该喷嘴具有新的几何形状,其与传统喷嘴相比减小了大约十倍的出口速度,用于相同的压降和流速。计算流体动力学(CFD)首先进行微调设计,以满足喷嘴下游的壁剪切应力的严格侵蚀防腐蚀要求,用于生产和(酸)注射方向,然后开发四个流动性能曲线不同的喷嘴“尺寸”,在其窒息能力中变化,从而允许在井架上每关节进行许多独特的设置。然后进行全面原型制造和流量回路测试以验证CFD流动性能预测,并展示高速生产和注射的机械完整性和耐腐蚀性。如本文所述的结果证明了:1)具有使用CFD的可预测的流动性能,2)在任一方向,3)最小化运行OD,4)简化了外壳设计5)允许在营业仪上安装34个独特设置。还讨论了在原始发展中未预期的其他ICD的两个新优势。

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