Establishment and application of temperature–pressure coupling model for opening and closing wells in HTHP gas wells

IF 1.9 4区 工程技术 Q4 ENERGY & FUELS Energy Exploration & Exploitation Pub Date : 2024-02-20 DOI:10.1177/01445987241233730
Jie Zheng, Jiahui Li, Weixiao Wang, Yihua Dou, Xu Yang, Yarong Zhang
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Abstract

Switching wells in high-temperature and high-pressure gas wells will affect parameters such as the temperature and pressure of the fluid in the wellbore. Dynamic monitoring of temperature and pressure is difficult, and wellbore temperature, pressure, and fluid physical parameters are coupled to each other. Obtaining them separately will lead to large calculation errors. In order to improve the prediction accuracy of temperature and pressure in high-temperature and high-pressure gas wells, Based on the temperature–pressure coupling algorithm, this study compares the advantages and disadvantages of nine classic algorithms based on the temperature–pressure coupling algorithm, considers the impact of high temperature and high pressure on the temperature and pressure of the gas wellbore fluid, and establishes an unsteady temperature–pressure coupling model for high-temperature and high-pressure gas wells under on–off well conditions. Comparing with the measured data, it is proved that the prediction accuracy of the unsteady temperature–pressure coupling model of high-temperature and high-pressure gas wells meets the construction requirements of switch wells. The established model is used to simulate the temperature and pressure distribution of two high-temperature and high-pressure gas wells under switching conditions. The analysis shows that the distribution of wellbore temperature and pressure under the switch on and off conditions is affected by the gas–water ratio, heat transfer coefficient, tube size, and gas well production. Among them, the gas–water ratio increased by 1.5 times, the wellhead temperature increased by 25%, and the wellhead pressure decreased is 7.68%; When the heat transfer coefficient is increased by 1.5 times, the wellhead temperature drops to 34.38% and the wellhead pressure drops to 2.29%. When the tube size is increased by 1.125 times, the wellhead temperature is reduced by 44.20% and the pressure is increased by 6.09%. When the production of gas well is doubled, the wellhead temperature increases by 40.79% and the wellhead pressure decreases by 2.29%. The results can be used as a basis for the construction of high-temperature and high-pressure gas wells.
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HTHP 气井开井和关井温压耦合模型的建立与应用
高温高压气井的切换会影响井筒内流体的温度和压力等参数。对温度和压力进行动态监测非常困难,而且井筒温度、压力和流体物理参数相互耦合。单独获取这些参数会导致较大的计算误差。为了提高高温高压气井温度和压力的预测精度,本研究基于温压耦合算法,比较了基于温压耦合算法的九种经典算法的优缺点,考虑了高温高压对气井井筒流体温度和压力的影响,建立了高温高压气井在关井条件下的非稳态温压耦合模型。通过与实测数据对比,证明高温高压气井非稳态温压耦合模型的预测精度满足开关井的施工要求。利用建立的模型模拟了两口高温高压气井在切换条件下的温度和压力分布。分析表明,开关开启和关闭条件下的井筒温度和压力分布受气水比、传热系数、管径和气井产量的影响。其中,气水比增加 1.5 倍时,井口温度上升 25%,井口压力下降 7.68%;传热系数增加 1.5 倍时,井口温度下降 34.38%,井口压力下降 2.29%。当管径增大 1.125 倍时,井口温度降低 44.20%,压力增加 6.09%。当气井产量增加一倍时,井口温度上升 40.79%,井口压力下降 2.29%。该结果可作为高温高压气井施工的依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Energy Exploration & Exploitation
Energy Exploration & Exploitation 工程技术-能源与燃料
CiteScore
5.40
自引率
3.70%
发文量
78
审稿时长
3.9 months
期刊介绍: Energy Exploration & Exploitation is a peer-reviewed, open access journal that provides up-to-date, informative reviews and original articles on important issues in the exploration, exploitation, use and economics of the world’s energy resources.
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