Analysis of three-dimensional nonlinear fluid-solid coupling vibration characteristics of coalbed methane abandoned well plugging string

被引:0
|
作者
Xu Z. [1 ,2 ]
Wan J. [3 ]
Hong Y. [1 ,2 ]
Liu H. [2 ]
Yi X. [1 ]
Diao B. [4 ]
Wang Y. [4 ]
机构
[1] School of Mechanical Engineering, Yangtze University, Jingzhou
[2] The Seventh Geological Brigade of Hubei Geological Bureau, Yichang
[3] China Energy Digital Technology Group Co., Ltd., Beijing
[4] Ministry of Education Key Laboratory of Petroleum Engineering, China University of Petroleum (Beijing), Beijing
关键词
abandoned coalbed methane well; liquid-solid coupling; mechanical properties of cement plug; mechanical vibration plugging; three-dimensional nonlinearity; vibration characteristics;
D O I
10.12363/issn.1001-1986.24.03.0219
中图分类号
学科分类号
摘要
[Objective] The plugging quality of cement plug in abandoned coalbed methane wells is critical to preventing pollutant leakage. Current standards for handling these wells involve simple mud pump injection, which often results in cement plugs with issues like particle agglomeration, bubbles, and micropores. These defects reduce the strength of the cement plug and compromise its sealing performance. [Methods] To address this, vibration technology is applied to the plugging operation, using a specialized tool to induce vibrations in the pipe string. This process enhances the fluidity of the cement slurry via the transmission of vibration energy, thereby improving the plugging quality of the cement plug. A three-dimensional nonlinear coupling vibration control model of the pipe string-cement slurry system during plugging operations was established based on Euler-Bernoulli beam theory and the Hamilton variational principle, taking into account nonlinear factors. The Lagrange function and cubic Hermite interpolation function were used to discretize the pipe string system. The Newmark-β method was employed to calculate and analyze the vibration characteristics of the pipe string under cement slurry conditions. An experimental test platform was constructed, and orthogonal tests were conducted to study the effects of vibration frequency, vibration time, and vibration amplitude on the mechanical properties of the cement stone under various parameter combinations. Optimal vibration parameters were identified, and the influence of individual factors on the mechanical properties of the cement stone was further examined. [Results and Conclusions] The results indicate that: (1) Considering the vertical and horizontal coupling effect transforms the string from a linear to a nonlinear structure. The applied load significantly increases the natural frequency of vibration, which changes in real-time along with the vibration mode, exhibiting periodic changes over time. (2) The length of the string is inversely proportional to the natural frequency of the vibration; longer strings show smaller variations in natural frequency. (3) The coupling effect between the pipe string and the cement slurry significantly impacts the natural frequency of vibration. In the presence of cement slurry, the natural frequency of the pipe string system decreases, with higher slurry density further reducing the natural frequency. (4) Mechanical vibration enhances the uniformity and density of the cement slurry system, substantially increasing the strength of the cement stone. When the vibration frequency is 15 Hz, vibration time is 5 minutes, and vibration amplitude is 3 mm, the compressive strength of the cement increases by 38.45%, tensile strength by 24.14%, and bonding strength by 52.9% compared to non-vibration conditions. The research findings provide guidance for designing vibration parameters for plugging tools and determining field construction parameters, improving cement slurry performance to enhance plugging quality, and offering significant engineering insights. © 2024 Science Press. All rights reserved.
引用
收藏
页码:174 / 186
页数:12
相关论文
共 38 条
  • [1] WANG Zheng, LI Guofu, ZHOU Xianjun, Et al., Key problems and countermeasures of CBM development through surface boreholes in abandoned coal mines of Shanxi Province[J], Coal Geology & Exploration, 49, 4, (2021)
  • [2] Yuying TU, ZHANG Yongli, Yubin DONG, Et al., Adsorption and desorption characteristics of coal seam gas under infrared radiation[J], Capillarity, 8, 3, (2023)
  • [3] Haoming MA, Shanshan CHEN, Dan XUE, Et al., Outlook for the coal industry and new coal production technologies[J], Advances in Geo-Energy Research, 5, 2, (2021)
  • [4] Xin LYU, Tong ZHANG, YUAN Liang, Et al., Prospects for the transformation and development of carbon storage in abandoned mines of coal enterprises from the perspective of carbon neutrality[J], International Journal of Coal Science & Technology, 10, 1, (2023)
  • [5] WANG Xiao, LI Nan, WANG Zhen, Situation of energy transition in China and policy suggestions[J], Oil & Gas Storage and Transportation, 41, 8, pp. 885-891, (2022)
  • [6] WU Tong, CHEN Yukai, DENG Zhonghua, Et al., Oil pipeline leakage monitoring developments in China[J], Journal of Pipeline Science and Engineering, 3, 4, (2023)
  • [7] YANG Boyu, Zhongke BAI, FU Shuai, Et al., Division of carbon sink functional areas and path to carbon neutrality in coal mines[J], International Journal of Coal Science & Technology, 9, 1, (2022)
  • [8] ZHANG Dalu, Disposal of abandoned coalbed methane wells, Energy and Energy Conservation, 2023, 4, pp. 219-221
  • [9] JIN Zhijun, Hydrocarbon accumulation and resources evaluation:Recent advances and current challenges[J], Advances in Geo-Energy Research, 8, 1, (2023)
  • [10] WANG Zhen, CUI Xin, Strategic choice for oil and gas companies under the vision of carbon neutrality[J], Oil & Gas Storage and Transportation, 40, 6, pp. 601-608, (2021)