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Impact of wellbore fluid properties on trapped annular pressure in deepwater wells

机译:井筒流体性质对深水井中滞留环压的影响

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To reduce the threat of trapped annular pressure on deepwater wells safe production, this study established a model of calculating trapped annular pressure, examined the influence of wellbore fluid properties on trapped annular pressure, and analyzed the sensitivities and engineering feasibilities of controllable factors. To realize the calculation of trapped annular pressure under multiple annuli with liquid, a volume balance equation set was built according to compatibility principle and a wellbore temperature computing model was built based on wellbore-formation coupled heat transfer. Annular pressure decreases as the expansion-compression ratio of annular fluid reduces. Decreasing annular saturation can eliminate annular pressure radically and then a formula was proposed to give extreme annular saturation. The increase of production fluid specific heat capacity and flow rate leads to enhancement of annular pressure. Annular pressure keeps a linear relation to production fluid hole bottom temperature and the wellhead temperature can reflect the value of annular pressure. The water ratio increase of production fluid causes dynamic increase of annular pressure. The sensitivity of annular saturation is much higher than other factors. Decreasing annular liquid thermal conductivity has relatively higher engineering feasibility. The annular pressure can be controlled effectively by developing subsea wellheads with the ability to release annular fluid, highly compressible materials and downhole thermal-insulated fluids.
机译:为减少圈闭环压对深水井安全生产的威胁,本研究建立了圈闭环压计算模型,研究了井筒流体性质对圈闭环压的影响,并分析了可控因素的敏感性和工程可行性。为了实现液体在多环空下的滞留环压计算,根据相容性原理建立了体积平衡方程组,并基于井眼-地层耦合传热建立了井眼温度计算模型。随着环形流体的膨胀压缩比减小,环形压力减小。降低环形饱和度可以从根本上消除环形压力,然后提出了一个公式,给出了极端的环形饱和度。生产流体比热容和流速的增加导致环形压力的增加。环形压力与采出流体孔底温度保持线性关系,井口温度可以反映环形压力值。生产流体的水比增加引起环形压力的动态增加。环形饱和度的灵敏度远高于其他因素。降低环形液体的导热系数具有相对较高的工程可行性。通过开发具有释放环形流体,高度可压缩材料和井下隔热流体的能力的海底井口,可以有效地控制环形压力。

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