Temperature distribution of brine and gas in the tubing during debrining of a salt cavern gas storage

被引:13
|
作者
Xie, Dongzhou [1 ,2 ]
Wang, Tongtao [1 ,3 ]
Li, Long [4 ]
He, Tao [1 ,2 ]
Chai, Guoxing [5 ]
Wang, Duocai [6 ]
Zhang, Hong [6 ]
Ma, Tieliang [6 ]
Zhang, Xin [7 ]
机构
[1] Chinese Acad Sci, Inst Rock & Soil Mech, State Key Lab Geomech & Geotech Engn, Wuhan 430071, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[3] Chinese Acad Sci, Inst Rock & Soil Mech, Hubei Key Lab Geoenvironm Engn, Wuhan 430071, Peoples R China
[4] WEGPC, Yinchuan Branch Off, Yinchuan 750001, Ningxia, Peoples R China
[5] SINOPEC Petr Explorat & Prod Res Inst, Beijing 100083, Peoples R China
[6] PipeChina West East Gas Pipeline Co, Shanghai 200120, Peoples R China
[7] PipeChina West East Gas Pipeline Co, Jiangsu Gas Storage Branch Co, Zhenjiang 212004, Jiangsu, Peoples R China
基金
中国国家自然科学基金;
关键词
Salt cavern gas storage; Debrining; Mathematical model; Temperature distribution; Salt crystal;
D O I
10.1016/j.est.2022.104236
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
During the debrining of an underground gas storage salt cavern (UGS), the decrease of brine temperature may cause the debrining inner tubing (DIT) to be blocked by salt crystal separating from brine. In this paper, a mathematical model used to calculate the temperature distribution of brine and gas in the tubing during the debrining is built based on the theories of heat transfer. A finite element iterative method is used to solve the mathematical model. A-1 cavern of Jintan UGS is taken as an example. The temperature distribution of brine and gas is calculated under different DIT sizes and debrining rates based on the mathematical model. The results show that the gas temperature increases rapidly in the 0~-30m and slowly in-30 ~-925 m. Increasing DIT size and debrining rate have no significant effect on the gas temperature distribution. The brine temperature decreases non linearly with decreasing depth. The brine temperature increases with the increase of debrining rate and decrease of DIT size. Brine temperature falls slowly over the range from-925 m to-600 m, and significantly above-600 m. Increasing debrining rate and decreasing thermal conductivity of tubing can decrease the drop of brine temperature. Increasing gas injection temperature has a minor effect on the brine temperature distribution. In order to prevent the DIT blocking by salt crystal, we proposed that use a DIT with low thermal conductivity to debrine. The accuracy and reliability of the model are verified by comparing the calculated values of brine temperature at the wellhead with field measured values for an actual cavern debrining. This study provides a theoretical basis for evaluating the temperature distribution of brine and predicting salt crystal growth during debrining.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] Construction simulation of large-spacing-two-well salt cavern with gas blanket and stability evaluation of cavern for gas storage
    Jiang, Deyi
    Wang, Yifan
    Liu, Wei
    Li, Lin
    Qiao, Weibiao
    Chen, Jie
    Li, Depeng
    Li, Zhengyi
    Fan, Jinyang
    JOURNAL OF ENERGY STORAGE, 2022, 48
  • [42] Study of Impact of Sediment on the Stability of Salt Cavern Underground Gas Storage
    Liang, Xiaopeng
    Ma, Hongling
    Cai, Rui
    Zhao, Kai
    Wang, Xuan
    Zheng, Zhuyan
    Shi, Xilin
    Yang, Chunhe
    ENERGIES, 2023, 16 (23)
  • [43] Study on Sealing Failure of Wellbore in Bedded Salt Cavern Gas Storage
    Chen, Xiangsheng
    Li, Yinping
    Liu, Wei
    Ma, Hongling
    Ma, Jianli
    Shi, Xilin
    Yang, Chunhe
    ROCK MECHANICS AND ROCK ENGINEERING, 2019, 52 (01) : 215 - 228
  • [44] Modeling and analysis of salt-cavern natural-gas storage
    20143117996164
    1600, Society of Petroleum Engineers (SPE) (66):
  • [45] Study on Sealing Failure of Wellbore in Bedded Salt Cavern Gas Storage
    Xiangsheng Chen
    Yinping Li
    Wei Liu
    Hongling Ma
    Jianli Ma
    Xilin Shi
    Chunhe Yang
    Rock Mechanics and Rock Engineering, 2019, 52 : 215 - 228
  • [46] Pilot abandonment test of a very deep gas storage salt cavern
    Durup, J. G.
    Vidal, F.
    Rolin, C.
    OIL & GAS SCIENCE AND TECHNOLOGY-REVUE D IFP ENERGIES NOUVELLES, 2007, 62 (03): : 287 - 296
  • [47] A calibration method for salt rock mechanics parameters of salt-cavern gas storage
    Li, Jianjun
    Chen, Jiasong
    Wu, Bin
    Wang, Huimeng
    Wang, Xiaogang
    Ao, Haibing
    Chen, Feng
    Natural Gas Industry, 2015, 35 (07) : 96 - 102
  • [48] THEORETICAL ANALYTICAL SOLUTION OF DEFORMATION AND STRESS DISTRIBUTION OF UNDERGROUND GAS STORAGE CAVERN IN BEDDED SALT ROCK
    Xie, P.
    Wen, H. J.
    Wang, G. J.
    Hu, J.
    ARCHIVES OF CIVIL ENGINEERING, 2018, 64 (04) : 37 - 53
  • [49] Oil storage and debrining process in insoluble sediment voids for underground salt cavern energy storage: An experimental study
    Wei, Xinxing
    Shi, Xilin
    Ma, Hongling
    Bai, Weizheng
    Ban, Shengnan
    Liu, Hejuan
    GEOENERGY SCIENCE AND ENGINEERING, 2024, 243
  • [50] Gas transport model in pore heterogeneous bedded salt rock: Implications for tightness evaluation of salt cavern gas storage
    Wang, Tongtao
    Liao, Youqiang
    Yang, Chunhe
    Xie, Dongzhou
    Chen, Wei
    Wang, Duocai
    Wang, Wenquan
    Zhang, Chaoyang
    He, Tao
    GAS SCIENCE AND ENGINEERING, 2024, 121