The Production Splitting Method of Offshore Multilayer Combined Water Flooding Gas Wells with Gas Dissolving

被引:0
作者
Ren, Chaoqun [1 ]
Deng, Chuanzhong [1 ]
Jiang, Zhehao [2 ]
Fu, Qiang [1 ]
Jiang, Lili [1 ]
Guo, Yuchuan [3 ]
Wu, Keliu [3 ]
机构
[1] CNOOC China Ltd, Haikou 570312, Peoples R China
[2] CNOOC China Ltd, Shanghai 200335, Peoples R China
[3] China Univ Petr, Beijing 102249, Peoples R China
来源
ACS OMEGA | 2024年 / 9卷 / 11期
基金
中国国家自然科学基金; 北京市自然科学基金; 中国博士后科学基金;
关键词
D O I
10.1021/acsomega.3c08949
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Offshore gas reservoirs are characterized by thin interlayers, high production, few wells, etc., and are often exploited by multilayer combined mining, whereas the production dynamics of multilayer gas reservoirs are very different from those of single-layer gas reservoirs. Therefore, clarifying the gas production contribution of each layer in multilayer combined gas reservoirs is an important prerequisite for analyzing the potential of gas reservoirs and realizing efficient development. In this paper, unlike the past method of evaluating the gas production contribution of each layer by using the KH attribute of the reservoir, we combined the modified B-L equation considering CO2 dissolution and the multilayer multizone seepage equation to establish a dynamic split model of the production dynamics of multilayer water-driven gas reservoirs, verified the reliability of the model through the numerical model and the results of the production well logging, quantitatively analyzed the degree of influence of each parameter on the contribution of the layered gas production, and designed the orthogonal experiments. The main controlling factors of the gas production contribution of each layer were determined. The results of the study show that (1) the main controlling factors for the gas production contribution of each layer in the early stage of WDG are, in order, permeability, thickness, outer boundary distance, porosity, CO2 content, and total gas production rate; however, the main controlling factors for the gas production contribution of each layer in the late stage of WDG are, in order, thickness, permeability, outer boundary distance, porosity, CO2 content, and total gas production rate; and the combined view shows that the permeability and thickness have the greatest influence. (2) In multilayer production, the conditions of high permeability, close gas-water boundary, poor gas content, and low CO2 content will reduce the gas production contribution of the layer with the increase of production time. (3) Compared with the results of production logging and numerical simulation, the split model can better predict the gas production of each layer, and the prediction error is no more than 10%. (4) By comparing with the numerical simulation results, the model can realize the prediction of the time of seeing water in the layer with stronger water body capability. (5) The model takes into account the effect of the CO2 content, better reflects the actual gas composition of each layer, and can improve the production prediction accuracy by up to 4%. Considering the high cost of production logging in offshore oil and gas fields, the inability of the KH method to reflect the dynamic changes of gas production in each layer, the poor application of stratified sampling to dry gas reservoirs, and other limitations, the model in this paper can be utilized to simulate the multilayer water-driven gas drive process when the energy of the water body is strong by using the geological parameters of the reservoir and the fluid parameters, and the simulation results of this model provide directions for offshore multilayer water-driven gas reservoirs to improve the recovery rate, and for plugging and regulating the water and exploiting the potential of gas wells that have seen water.
引用
收藏
页码:12850 / 12865
页数:16
相关论文
共 12 条
[1]  
Azari M., 1996, PERM BAS OIL GAS REC
[2]  
Fankun M., 2018, J CHINA U PET, V42, P91
[3]  
Jia Y L., 2014, RES THEORYOF COMPLIC
[4]   Experimental determination and prediction of gas solubility data for CO2 + H2O mixtures containing NaCl or KCl at temperatures between 313 and 393 K and pressures up to 10 MPa [J].
Kiepe, J ;
Horstmann, S ;
Fischer, K ;
Gmehling, J .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2002, 41 (17) :4393-4398
[5]   A STUDY OF THE BEHAVIOR OF BOUNDED RESERVOIRS COMPOSED OF STRATIFIED LAYERS [J].
LEFKOVITS, HC ;
HAZEBROEK, P ;
ALLEN, EE ;
MATTHEWS, CS .
SOCIETY OF PETROLEUM ENGINEERS JOURNAL, 1961, 1 (01) :43-58
[6]  
Long H, 2019, Sci. Technol. Eng, V19, P140
[7]  
Noh M., 2004, DOE S IMPR OIL REC T, P17
[8]  
Sabatier L., 2015, INT PETR TECHN C
[9]  
Shah P. C., 1993, SPE PRODUCTION OPERA
[10]  
Tariq S. M., 1978, PE ANN FALL ECHN C E