储气库P110注采管柱气-液-固三相冲蚀机理及临界冲蚀预测研究OA
Study on erosion mechanism and critical erosion prediction of gas-liquid-solid three phase in P110 injection-production string in UGSs
储气库长周期循环注采及应急调峰工况下,储层岩石疲劳损伤造成出砂加剧,井筒内形成气-液-固三相流动,注采管柱冲蚀机理缺乏系统认识.以 P110碳钢注采管柱为研究对象,基于气-液-固三相可视化管流式冲蚀实验装置,设计加工考虑周向冲蚀分布的环形试样,开展气流速 17~50 m/s、含砂率 0.000 1%~0.02%、持液率 0.001%~0.01%条件下的冲蚀实验,采用失重法测量冲蚀速率,并结合微观形貌观测进行分析.研究结果表明:气流速与冲蚀速率的关系呈现指数式变化,含砂率与冲蚀速率的关系呈现对数式变化,持液率与冲蚀速率的关系呈现二项式变化;通过对含砂率和持液率等主要因素进行表征,绘制了复杂工况下 P110注采管柱临界冲蚀系数图版;并建立了 P110材质管柱气-液-固三相临界冲蚀预测模型,与实验实际值相比,预测结果误差为 6.52%,在气-液-固三相工况下明显优于现有 API RP 14E模型.该模型评价结果可为储气库单井峰值气量设计及注采管柱安全运行提供理论依据.
In underground gas storage(UGS)facilities,prolonged cyclic injection-production operations and extreme peak-shaving conditions induce fatigue degradation of reservoir formations,intensifying sand production and resulting in gas-liquid-solid three-phase flow within the wellbore.This multiphase interaction complicates erosion mechanisms within the injection-production string.To address these challenges,under conditions of gas flow velocity of 17-50 m/s,sand content of 0.000 1%-0.02%,and liquid holdup of 0.001%-0.01%,erosion experiments were conducted utilizing a gas-liquid-solid three-phase visual pipe flow erosion apparatus,with P110 carbon steel injection-production string specimens subjected to annular flow conditions incorporating circumferential erosion distribution analysis.The erosion rate was measured using weight-loss method and analyzed combining with microscopic morphology observation.These findings indicate that the relationship between gas flow velocity and erosion rate exhibits exponential trend,and that between sand content and erosion rate follows logarithmic trend,and that between liquid holdup and erosion rate can be described by binomial pattern.The chart of critical erosion coefficient under complicated operation conditions was plotted and a gas-liquid-solid three-phase critical erosion prediction model for P110 injection-production string was established by characterizing key factors such as sand content and liquid holdup.A comparison of the experimental actual values with the predicted values revealed a prediction error of 6.52%,which is significantly lower than the existing API RP 14E model under gas-liquid-solid three-phase operating conditions.In conclusion,the gas-liquid-solid three-phase erosion prediction model developed in this study can provide theoretical support for determining the peak gas volume of individual wells and safe operation of injection-production string in UGS facilities.
谢川;邓兴旺;完颜祺琪;王云;罗孝雄;刘重伯;黄小亮
重庆科技大学,重庆 401331重庆科技大学,重庆 401331中国石油勘探开发研究院,北京 100083中国石油勘探开发研究院,北京 100083中国石油西南油气田公司川中油气矿,四川 遂宁 629018中国石油华北油田公司油气工艺研究院,河北任丘 062552重庆科技大学,重庆 401331
能源科技
储气库P110管柱气-液-固三相流冲蚀机理临界冲蚀系数冲蚀预测
underground gas storageP110 pipe stringgas-liquid-solid three-phase flowerosion mechanismcritical erosion coefficienterosion prediction
《石油钻采工艺》 2026 (3)
361-369,9
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