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Joule–Thomson Effect on Bottom Hole Temperature in Ultra-High-Temperature and High-Pressure Gas Wells

作者:Boyuan Yang, Hui Zhang, Baokang Wu, Kunhong Lv, Yuting Zhou, Xingyu Li, Ze Yang, Rui Yuan · 发表于:ACS Omega · 年份:2025 · DOI:10.1021/acsomega.4c09926 · 被引用次数:6 · 研究领域:Drilling and Well Engineering、Hydraulic Fracturing and Reservoir Analysis、Phase Equilibria and Thermodynamics

Accurate calculation of temperature and pressure in the borehole of ultrahigh-temperature and high-pressure wells is essential for casing stress analysis. Typically, formation temperature is assumed to be equal to bottom-hole temperature, but this assumption deviates from actual conditions, affecting the accuracy of casing stress calculations. In ultrahigh-temperature and high-pressure environments, the Joule-Thomson effect can cause the bottom-hole temperature to exceed the formation temperature, further impacting temperature calculations throughout the wellbore. This study employs the BWRS equation of state to model the Joule-Thomson effect in ultrahigh-temperature and high-pressure gas wells. A predictive model for bottom-hole temperature in such wells is developed. The influences of production rate, wellbore diameter, and natural gas relative density on bottom-hole temperature are also analyzed. Results show that in these conditions, the bottom-hole temperature decreases as the perforation hole diameter, production rate, and relative density of natural gas increase, due to the Joule-Thomson effect.