岩性油气藏 ›› 2018, Vol. 30 ›› Issue (2): 154160.doi: 10.12108/yxyqc.20180217
陈欢1,2, 李紫晗1, 曹砚锋1,2, 于继飞1,2, 李孟龙1
CHEN Huan1,2, LI Zihan1, CAO Yanfeng1,2, YU Jifei1,2, LI Menglong1
摘要: 临兴致密砂岩气田低产积液井数量呈逐渐上升趋势,由于实测数据的缺失导致井筒积液预测困难,严重影响了气井的正常生产和经济效益。为了揭示致密气井井筒积液的变化过程,以临兴先导试验区致密气井为研究对象,结合气田生产管柱特点和井筒压力测试数据,建立了一套适用于临兴致密气田井筒积液的动态预测方法。应用结果表明,积液动态预测方法能够模拟致密气井井筒积液的动态物理过程,定量计算气井井筒的积液量和积液高度。该方法较好地解决了临兴致密气田井筒积液规律预测的难题,对临兴致密气田的开发具有一定的指导和借鉴意义。
中图分类号:
[1] 赵达, 许浩, 汪雷, 等.临兴地区山西组致密砂岩储层特征及成因探讨.岩性油气藏, 2016, 28(4):51-58. ZHAO D, XU H, WANG L, et al. Characteristics and genesis of tight sandstone reservoir of Shanxi Formation in Linxing area, Ordos Basin. Lithologic Reservoirs, 2016, 28(4):51-58. [2] 魏新善, 胡爱平, 赵会涛, 等.致密砂岩气地质认识新进展.岩性油气藏, 2017, 29(1):11-20. WEI X S, HU A P, ZHAO H T, et al. New geological understanding of tight sandstone gas. Lithologic Reservoirs, 2017, 29(1):11-20. [3] TURNER R G, HUBBARD M G, DUKLER A E. Analysis and prediction of minimum flow rate for the continuous removal of liquids from gas wells. Journal of Petroleum Technology, 1969, 21(9):1475-1482. [4] COLEMAN S B, CLAY H B, MCCURDY D G, et al. A new look at predicting gas-well load up. Journal of Petroleum Technology, 1991, 43(7):329-333. [5] 李闽, 郭平, 刘武, 等.气井连续携液模型比较研究.断块油气田, 2002, 9(6):39-41. LI M, GUO P, LIU W, et al. Comparative study of continuousremoval liquid models from gas wells. Fault-Block Oil & Gas Field, 2002, 9(6):39-41. [6] 周瑞立, 周舰, 罗懿, 等.低渗产水气藏携液模型研究与应用. 岩性油气藏, 2013, 25(4):123-128. ZHOU R L, ZHOU J, LUO Y, et al. Research and application of liquid-carrying model for low permeability and water production gas reservoir. Lithologic Reservoirs, 2013, 25(4):123-128. [7] 于继飞, 管虹翔, 顾纯巍, 等. 海上定向气井临界流量预测方法.特种油气藏, 2011, 18(6):117-119. YU J F,GUAN H X,GU C W,et al. Prediction of critical flow rate for offshore directional gas wells. Special Oil & Gas Field, 2011, 18(6):117-119. [8] 周舰, 王志彬, 罗懿, 等.高气液比气井临界携液流量计算新模型.断块油气田, 2013, 20(6):775-778. ZHOU J, WANG Z B, LUO Y, et al. New model to calculate critical liquid-carrying gas flow rate in gas well with high gasliquid ratio. Fault-Block Oil & Gas Field, 2013, 20(6):775-778. [9] 李元生, 藤赛男, 杨志兴, 等.考虑界面张力和液滴变形影响的携液临界流量模型.石油钻采工艺, 2017, 39(2):218-223. LI Y S, TENG S N, YANG Z X, et al. Critical liquid carrying flow rate model with consideration of interfacial tension and droplet deformation effect. Oil Drilling & Production Technology, 2017, 39(2):218-223. [10] 刘刚.气井携液临界流量计算新方法.断块油气田, 2014, 21(3):339-340. LIU G. A new calculation method for critical liquid carrying flow rate of gas well. Fault-Block Oil & Gas Field, 2014, 21(3):339-340. [11] 赵界, 李颖川, 刘通, 等.大牛地地区致密气田气井积液判断新方法.岩性油气藏, 2013, 25(1):122-125. ZHAO J, LI Y C, LIU T, et al. A new method to judge liquid loading of gas wells in tight gas field of Daniudi area. Lithologic Reservoirs, 2013, 25(1):122-125. [12] 鹿克峰, 简洁, 张彦振, 等. 井筒变流量气井携液临界流量的确定方法——以东海西湖凹陷多层合采气井为例.岩性油气藏, 2017, 29(3):147-151. LU K F, JIAN J, ZHANG Y Z, et al. A new method of measuring critical liquid carrying flow rate in the variable wellborerate gas well. Lithologic Reservoirs, 2017, 29(3):147-151. [13] 娄乐勤, 耿新中. 气井携液临界流速多模型辨析. 断块油气田, 2016, 23(4):497-500. LOU L Q, GENG X Z. Models of critical liquid carrying flow rate for gas wells. Fault-Block Oil & Gas Field, 2016, 23(4):497-500. [14] 苟三权. 气井井筒液面位置确定的简易方法. 油气井测试, 2006, 15(4):25-26. GUO S Q. A simple method to determine flow position in gas well. Well Testing, 2006, 15(4):25-26. [15] 张紫阳, 张海均, 刘庆志, 等.压力测试资料在排水采气中的初步应用.化工管理, 2014(21):68. ZHANG Z Y, ZHANG H J, LIU Q Z, et al. The preliminary application of pressure test data in the drainage gas recovery. Chemical Enterprise Management, 2014(21):68. [16] 马遥. 探测液面资料在苏X气田的应用. 石油化工应用, 2016, 35(12):58-61. MA Y. The application of detecting liquid surface in the Su X gas field. Petrochemical Industry Application, 2016, 35(12):58-61. [17] 黄雨.苏里格气井井筒积液规律及积液判据研究.成都:西南石油大学, 2015. HUANG Y. Wellbore liquid loading regular and judgment of gas wells in tight gas field of Sulige area. Chengdu:Southwest Petroleum University, 2015. [18] 冯永兵.苏里格气田东区排水采气工艺评价研究.成都:西南石油大学, 2015. FENG Y B. Evaluation research of drainage gas recovery in east Sulige gas field. Chengdu:Southwest Petroleum Institute, 2015. [19] 陈增辉, 金大权, 赵永刚, 等.苏里格气井井筒积液量计算方法及应用.石油化工应用, 2016, 35(8):25-27. CHEN Z H, JIN D Q, ZHAO Y G, et al. Calculation method of the volume of wellbore effusion liquid in gas well of Sulige gasfield and its application. Petrochemical Industry Application, 2016, 35(8):25-27. [20] 赵春立, 杨志, 张正祖.气井井筒积液及其高度研究. 重庆科技学院学报(自然科学版), 2011, 13(5):93-96. ZHAO C L, YANG Z, ZHANG Z Z, et al. Prediction of critical flow rate for offshore directional gas wells. Journal of Chong-qing University of Science and Technology(Natural Science Edition), 2011, 13(5):93-96. [21] 李波, 王军磊, 宁波, 等.气井井筒温度、压力与积液综合预测模型.石油钻采工艺, 2014, 36(4):64-70. LI B, WANG J L, NING B, et al. A comprehensive prediction model of wellbore temperature, pressure and accumulated liquid for gas wells. Oil Drilling & Production Technology, 2014, 36(4):64-70. [22] 宋玉龙, 杨雅惠, 曾川, 等.临界携液流量与流速沿井筒分布规律研究.断块油气田, 2015, 22(1):90-93. SONG Y L, YANG Y H, ZENG C, et al. Research on distribution of critical carrying fluid flow rate and velocity along shaft. Fault-Block Oil & Gas Field, 2015, 22(1):90-93. [23] 朱春明, 王新根, 董社霞, 等.临兴区块致密气井油管直径优选研究.石油机械, 2017, 45(4):74-78. ZHU C M, WANG X G, DONG S X, et al. Study on tubing diameter optimization for tight gas well in block Linxing. China Petroleum Machinery, 2017, 45(4):74-78. [24] 吴武超, 李治平, 赖枫鹏, 等. 致密气藏水平井速度管下入时间确定方法. 断块油气田, 2015, 22(4):522-525. WU W C, LI Z P, LAI F P, et al. Method to determine time of installing velocity string for horizontal well in tight gas reservoirs. Fault-Block Oil & Gas Field, 2015, 22(4):522-525. |
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