Han Feng, Gu Lei, Cui Xiaojie, Li Fuping, Ruan Chenliang, Feng Bin. Mechanical Model for Setting the Liner Hanger with Embedded Slips[J]. Petroleum Drilling Techniques, 2015, 43(6): 103-107. DOI: 10.11911/syztjs.201506019
Citation: Han Feng, Gu Lei, Cui Xiaojie, Li Fuping, Ruan Chenliang, Feng Bin. Mechanical Model for Setting the Liner Hanger with Embedded Slips[J]. Petroleum Drilling Techniques, 2015, 43(6): 103-107. DOI: 10.11911/syztjs.201506019

Mechanical Model for Setting the Liner Hanger with Embedded Slips

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  • Received Date: June 03, 2015
  • Revised Date: November 08, 2015
  • Liner hangers with embedded slips are structurally complex, and the slip clamping force is the key factor for successful setting the liner hangers. Based on the structures and manufacturing process of embedded slip setting systems, a mechanic model of setting system for embedded slip liner hangers was built by using matrix theories, the theoretical calculation methods were worked out for clamping force of slips, the relationship among the slip clamping force, liner weights, cutter rotation angle and friction coefficient on contact surface were analyzed. Setting tests were performed for the embedded slip liner hanger and casing, outside strain of casing was collected and analyzed with different axial loads by means of strain testing systems, the contact stress between the casing inner wall and the slip was calculated by using Lame’s Equation. Research results showed that the calculated value of contact strain between the slip and casing coincided with measured mean value. Maximum and minimum stresses are 150% and 75% of the average value respectively. The analysis and test results of setting the mechanical models can provide an important basis for structural design and the optimization of liner hangers.
  • [1]
    毕红杰.旋转尾管悬挂器卡瓦-锥体的性能分析与结构改进[D].青岛:中国石油大学(华东)机电工程学院,2011. Bi Hongjie.Performance analysis and structure improvement of rotating liner hanger’s slips and cone[D].Qingdao:China University of Petroleum(Huadong),College of Mechanical and Electronic Engineering,2011.
    [2]
    杨赟达,刘绘新,胥志雄,等.套管悬挂器抗内压结构安全性分析[J].石油矿场机械,2014,43(2):75-78. Yang Yunda,Liu Huixin,Xu Zhixiong,et al.Casing hanger internal pressure structural safety analysis[J].Oil Field Equipment,2014,43(2):75-78.
    [3]
    尹飞,高宝奎,黄丹,等.深井尾管悬挂器强度分析及悬挂载荷计算[J].石油矿场机械,2011, 40(9):33-36. Yin Fei,Gao Baokui,Huang Dan,et al.Analysis of strength and suspended load of liner hanger in deep well[J].Oil Field Equipment,2011,40(9):33-36.
    [4]
    董照远.尾管悬挂器力学分析[D].秦皇岛:燕山大学车辆与能源学院,2010. Dong Zhaoyuan.Mechanical analysis of liner hanger[D].Qinhuangdao:Yanshan University,College of Vehicles and Energy,2010.
    [5]
    阮臣良,冯丽莹,张金法,等.内嵌卡瓦尾管悬挂器的研制与应用[J].石油机械,2012,40(8):15-18,23. Ruan Chenliang,Feng Liying,Zhang Jinfa,et al.Development and application of liner hanger embedded with slips[J].China Petroleum Machinery,2012,40(8):15-18,23.
    [6]
    于成水,张恒,刘艳红,等.悬挂器坐挂失效的简要分析[J].钻采工艺,2002,25(1):90-91. Yu Chengshui,Zhang Heng,Liu Yanhong,et al.Analysis of the hanger set failure[J].Drilling Production Technology,2002,25(1):90-91.
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