FU Li, SHEN Siyuan, WANG Kailong, ZHENG Li. Research on the Driving Force of the Pumping Down Tool for a PE Screen Completion in CBM Horizontal Wells[J]. Petroleum Drilling Techniques, 2017, 45(1): 68-72. DOI: 10.11911/syztjs.201701012
Citation: FU Li, SHEN Siyuan, WANG Kailong, ZHENG Li. Research on the Driving Force of the Pumping Down Tool for a PE Screen Completion in CBM Horizontal Wells[J]. Petroleum Drilling Techniques, 2017, 45(1): 68-72. DOI: 10.11911/syztjs.201701012

Research on the Driving Force of the Pumping Down Tool for a PE Screen Completion in CBM Horizontal Wells

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  • Received Date: August 21, 2016
  • Revised Date: January 08, 2017
  • In order to efficiently design the parameters of the pumping down tool and to improve the pumping efficiency of PE screens, a study was conducted to investigate the effects of drilling fluid, drilling pipe and pumping down tool parameters on the driving force of pumping down tools by means of a CFD numerical simulation method based on the on-site operational conditions of CBM horizontal wells.It was shown that the fluid pressure at the pressurized ledge of pumping down tools was positive and the fluid pressure at the guiding surface was negative.In view of the opposite directions of the positive and negative force, their resultant force was the force to drive pumping down tools forward.The driving force on the pumping down tools increased by increasing the flow rate, viscosity and density of drilling fluid, but the effect of drilling fluid viscosity on driving force was much less than that of drilling fluid density and flow rate.The driving force on the pumping down tools decreased quickly at first and then slowly by increasing of the annular clearance between the drilling pipe and the pumping down tool, and decreased lineally by increasing the drainage orifice diameter.The effect of annular clearance on driving force was much more than that of drainage orifice diameter.Indoor investigation and field application indicated that the driving force produced by thispumping down tool was large enough to satisfy the field operation of PE screen completion.
  • [1]
    付利,申瑞臣,苏海洋,等.煤层气水平井完井用塑料筛管优化设计[J].石油机械,2012,40(8):47-51. FU Li,SHEN Ruichen,SU Haiyang,et al.Optimized design of platic screen for coal bed methane horizontal well completion[J].China Petroleum Machinery,2012,40(8):47-51.
    [2]
    赵永哲.松软煤层水平对接井筛管完井工艺技术[J].煤田地质与勘探,2014,42(4):100-102. ZHAO Yongzhe.Well completion technology by screen pipe for horizontally-intersected well in soft coal seam[J].Coal Geology Exploration,2014,42(4):100-102.
    [3]
    BENNETT T.Innovation of coal seam gas well-construction process in Australia:lesson learned, successful practices, areas of improved[R].SPE 156930,2012.
    [4]
    ZHAO Yongzhe,SHI Zhijun,HAO Shijun,et al.Well completion technology using screen pipe for horizontally-intersected well in soft coal seam//2012 Chengdu Geological Engineering Drilling Technology Conference[C].2012.
    [5]
    申瑞臣,时文,徐义,等.煤层气U型井PE筛管完井泵送方案[J].中国石油大学学报(自然科学版),2012,36(5):96-99,104. SHEN Ruichen,SHI Wen,XU Yi,et al.PE screen completion for U-shaped coal-bed methane wells with pumping method[J].Journal of China University of Petroleum(Edition of Natural Science),2012,36(5):96-99,104.
    [6]
    陈修平,邹德永,李东杰,等.PDC钻头防泥包性能数值模拟研究[J].石油钻探技术,2015,43(6):108-113. CHEN Xiuping,ZOU Deyong,LI Dongjie,et al.Numerical simulation study on the anti-balling performance of PDC drill bits[J].Petroleum Drilling Techniques,2015,43(6):108-113.
    [7]
    魏辽,韩峰,陈涛,等.套管固井滑套冲蚀磨损模拟分析与试验研究[J].石油钻探技术,2014,42(3):108-111. WEI Liao,HAN Feng,CHEN Tao,et al.Analysis and experimental research on erosion of cementing sliding sleeve[J].Petroleum Drilling Techniques,2014,42(3):108-111.
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