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Downhole multistage choke technology to reduce sustained casing pressure in a HPHT gas well

机译:井下多级节流技术可降低HPHT气井中的持续套管压力

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This paper describes a new downhole multistage choke technology for lowering the wellbore pressure and temperature profile of a high-pressure and high-temperature (HPHT) gas well. With the nodal system analysis of a gas well, the wellbore pressure and temperature distribution model of a downhole multistage throttle was established when coupling the throttling pressure and temperature dropping model. An example of a HPHT gas well was analyzed and also the choke hole diameters, numbers and positions of the downhole chokes were optimized according to the presets of the wellhead pressure, temperature and acceptable sustained casing pressure (SCP) in the A annulus. The results show that when adopting two-stage downhole throttling, the wellhead tubing pressure, average wellbore temperature, and the wellhead casing pressure in the A annulus have been decreased by 64.4%, 37.8%, and 43.6%, respectively, compared to the case with the surface choke technology. Therefore, using multi-stage throttling technology in HPHT gas wells can reduce wellhead pressure and wellbore temperature significantly, which can effectively lower the risk of SCP, ensure the integrity and security of wellbore and also greatly reduce the platform space for fixed offshore gas wells. (C) 2015 Elsevier B.V. All rights reserved.
机译:本文介绍了一种新的井下多级节流技术,该技术可降低高压高温(HPHT)气井的井筒压力和温度曲线。通过对气井节点系统的分析,建立了节流压力降温模型时井下多级节流孔的井眼压力温度分布模型。分析了一个HPHT气井实例,并根据A环空中井口压力,温度和可接受的持续套管压力(SCP)的预设优化了节流孔直径,井下节流孔的数量和位置。结果表明,采用两阶段井下节流时,A环空的井口油管压力,平均井眼温度和井口套管压力分别比情况降低了64.4%,37.8%和43.6%。表面扼流技术。因此,在高温高压气井中采用多级节流技术可以显着降低井口压力和井眼温度,从而可以有效降低SCP风险,确保井眼的完整性和安全性,还可以大大减少固定海上气井的平台空间。 (C)2015 Elsevier B.V.保留所有权利。

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