Articles

Calculation Method of Critical Flow Rate in Condensate Gas Wells Considering Real Interfacial Tension

  • LI Zhiping ,
  • GUO Zhenzhen ,
  • LIN Na
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  • 1. Beijing Key Laboratory of Unconventional Natural Gas Geology Evaluation and Development Engineering; School of Energy and Resource, China University of Geosciences, Beijing 100083, China;
    2. Natural Gas Undertakings Department of Petrochina Tarim Oilfield Company, Korla 841000, China

Received date: 2014-04-08

  Revised date: 2014-06-27

  Online published: 2014-08-26

Abstract

Through study of gas-liquid interfacial tension of condensate gas reservoir and conventional gas well continuousremoval liquid model, this paper proposes a calculation method of critical flow rate in condensate gas wells with real interfacial tension to improve the accuracy of judgment of gas well liquid loading status used by conventional models. Analysis of the changing characteristics of interfacial tension shows that condensate oil has low interfacial tension. When condensate gas well liquid loading is analyzed, wells are suggested to be divided into two types: oil-gas wells and oil-water wells. Oil-gas interfacial tension was used in calculation for oil-gas wells, while gas-water interface tension was used in calculation for oil-water wells. According to the well production state, the actual temperature and pressure were used to calculate the interfacial tension. Three general models were modified by considering the variable interfacial tension, and the critical flow rates were calculated for 20 gas wells of a condensate gas field in Xinjiang. The results show that the accuracy rate of critical flow rate calculated by the modified Turner's model reached 90%, which can be used as the judging standard of prediction of liquid loading in this region.

Cite this article

LI Zhiping , GUO Zhenzhen , LIN Na . Calculation Method of Critical Flow Rate in Condensate Gas Wells Considering Real Interfacial Tension[J]. Science & Technology Review, 2014 , 32(23) : 28 -32 . DOI: 10.3981/j.issn.1000-7857.2014.23.003

References

[1] 杨继盛. 采气工艺基础[M]. 北京: 石油工业出版社, 1992. Yang Jisheng. Gas recovery process basis[M]. Beijing: Petroleum Industry Press, 1992.
[2] 杨继盛, 刘建仪. 采气实用计算[M]. 北京: 石油工业出版社, 1994. Yang Jisheng, Liu Jianyi. Gas recovery utility computing[M]. Beijing: Petroleum Industry Press, 1994.
[3] Ramey Jr H J. Wellbore heat transmission[J]. Journal of Petroleum Technology, 1962, 14(4): 427-435.
[4] Coulter D M, Bardon M F. Revised equation improves flowing gas temperature prediction[J]. Oil & Gas Journal, 1979, 77(9): 107-108.
[5] Hasan A R, Kabir C S. Heat transfer during two-phase flow in Wellbores; Part Ⅱ-wellbore fluid temperature[C]. SPE Annual Technical Conference and Exhibition, Dallas, Texas, October 6-9, 1991.
[6] 毛伟, 粱政. 气井井筒压力温度耦合分析[J]. 天然气工业, 1999, 19 (6): 66-69. Mao Wei, Liang Zheng. Coupling analysis of the pressure and temperature in gas well borehole[J]. Natural Gas Industry, 1999, 19(6): 66-69.
[7] 郭春秋, 李颖川. 气井压力温度预测综合数值模拟[J]. 石油学报, 2001, 22(3): 100-104. Guo Chunqiu, Li Yingchuan. Comprehensive numerial simulation of pressure and temperature prediction in gas well[J]. Acta Petrolei Sinica, 2001, 22(3): 100-104.
[8] 廖新维, 冯积累. 深层高压气藏井筒不稳定传热压力温度耦合计算方 法[J]. 石油勘探与开发, 2005, 32(1): 67-69. Liao Xinwei, Feng Jilei. Pressure-temperature coupling calculation of transient wellbore heat transfer in deep geopressured gas reservoir[J]. Petroleum Exploration and Development, 2005, 32(1): 67-69.
[9] 薛秀敏, 李相方, 吴义飞, 等. 高气液比气井井筒温度分布计算方法[J]. 天然气工业, 2006, 26(5): 102-104. Xue Xiumin, Li Xiangfang, Wu Yifei, et al. Calculting method of borehole temperature distribution of gas wells with high gas/liquid ratio[J]. Natural Gas Industry, 2006, 26(5): 102-104.
[10] 喻西崇, 胡永全, 赵金洲, 等. 凝析气井井眼压降和温降计算研究[J]. 钻采工艺, 2002, 25(1): 37-39. Yu Xichong, Hu Yongquan, Zhao Jinzhou, et al. Computational analysis of borehole pressure drop and temperature drop for gas condensate well[J]. Drilling & Production Technology, 2002, 25(1): 37-39.
[11] 常志强, 孙雷, 康征, 等. 高温高压凝析气井井筒动态分析新方法[J]. 断块油气田, 2006, 13(12): 48-50. Chang Zhiqiang, Sun Lei, Kang Zheng, et al. Wellbore performance analysis of high-temperature high-pressure condensate gas wells[J]. Fault-Block Oil & Gas Field, 2006,13(12): 48-50.
[12] Lindeberg E G B, BJØRKVIK B J A, Strand K A. Interface light scattering measurement of low interfacial tension on a gas condensate system at high pressure and temperature[C]. DOE Symposium on Improved Oil Recovery, Tulsa, OK, April 19-22, 1996.
[13] Henderson G D, Danesh A, Tehrani D H, et al. An investigation into the processes governing flow and recovery in different flow regimes present in gas condensate reservoirs[C]. SPE Annual Technical Conference and Exhibition, Houston, Texas, October 3-6, 1993.
[14] 苏畅, 郭平, 李士伦, 等. 凝析油气微观流动及相渗规律研究[J]. 天然 气工业, 2002, 22(4): 61-64. Su Chang, Guo Ping, Li Shilun, et al. Investigation of the microvisual flow and relative permeability law of condensate oil and gas[J]. Natural Gas Industry, 2002, 22(4): 61-64.
[15] 罗凯, 方义生, 宋文杰, 等. 凝析油气低界面张力对凝析油流动的影 响[J]. 石油勘探与开发, 1999, 26(4): 77-79. Luo Kai, Fang Yisheng, Song Wenjie, et al. Effect of low interfacial tension on mobility of condensate[J]. Petroleum Exploration and Development, 1999, 26(4): 77-79.
[16] 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[J]. Journal of Petroleum Technology, 1969, 21(11): 1475-1482.
[17] Coleman S B, Clay H B, Mc Curdy D G, et al. A new look at predicting gas-well load-up[J]. Journal of Petroleum Technology, 1991, 43(3): 329-333.
[18] Nosseir M A, Darwich T A, Sayyouh M H, et al. A new approach for accurate prediction of loading in gas wells under different flowing conditions[J]. SPE Production & Facilities, 2000, 15(4): 241-246.
[19] Guo B, Ghalambor A, Xu C. A systematic approach to predicting liquid loading in gas wells[J]. SPE Production & Operations, 2006, 21 (1): 81-88.
[20] 李闽, 孙雷, 李士伦. 一个新的气井连续排液模型[J]. 天然气工业, 2001, 21(5): 61-63. Li Min, Sun Lei, Li Shilun. A new gas well liquid continuous withdrawal model[J]. Natural Gas Industry, 2001, 21(5): 61-63.
[21] 王毅忠, 刘庆文. 计算气井最小携液临界流量的新方法[J].大庆石油 地质与开发, 2007, 26(6): 82-84. Wang Yizhong, Liu Qingwen. A new method to calculate the minimum critical liquids carrying flow rate for gas wells[J]. Petroleum Geology & Oilfield Development in Daqing, 2007, 26(6): 82-84.
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