An improved visual investigation on gas-water flow characteristics and trapped gas formation mechanism of fracture-cavity carbonate gas reservoir

被引:57
作者
Wang, Lu [1 ]
Yang, Shenglai [1 ]
Peng, Xian [2 ]
Deng, Hui [2 ]
Meng, Zhan [1 ]
Qian, Kun [1 ]
Wang, Zhilin [3 ]
Lei, Hao [1 ]
机构
[1] China Univ Petr, State Key Lab Petr Resource & Engn, Beijing 102249, Peoples R China
[2] Southwest Oil & Gas Field Co, PetroChina, Explorat & Dev Res Inst, Chengdu 610041, Sichuan, Peoples R China
[3] Sinopec, Jiangsu Oilfield Co, Yangzhou 225009, Jiangsu, Peoples R China
关键词
Visual experiment; Microscopic visual model; Trapped gas; Gas-water flow; Fracture-cavity carbonate gas reservoir; ImageJ gray analysis; ENHANCED OIL-RECOVERY; GLASS MICROMODEL; POROUS-MEDIA; MULTIPHASE FLOW; ALTERNATING-GAS; PORE GEOMETRY; CO2; INJECTION; VISUALIZATION; DRIVE; GEL;
D O I
10.1016/j.jngse.2017.11.010
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
Water encroachment is a serious problem for developing an edge and bottom water reservoirs. The fracture-cavity gas reservoir has various reservoir media and strong heterogeneity, leading to the complex gas-water flow mechanism and trapped gas formation during water encroachment. Presently, no systematic study on the gas-water flow characteristics and trapped gas formation mechanism exists, especially through visual experiment. In this paper, the creation and testing of three types of visualization micromodels were described based on the CT scan images and microelectronic photolithography techniques. Subsequently, a 2D visual experiment was conducted initially to investigate the gas-water flow characteristics and the trapped gas formation mechanism intuitively. Then, ImageJ gray analysis method was utilized to study the distribution of trapped gas, saturation, and gas recovery quantitatively. Finally, several development suggestions were presented for different types of reservoirs based on the quantitative characterization results. Experimental results showed that the flow characteristics of fracture-, cavity-, and fracture-cavity-type micromodels are different during water encroachment, resulting from the large difference of microstructures. The trapped gas formed at dead ends or blind corners, circumfluence, and cutoff phenomenon, can be commonly found in three types of micromodels. However, the trapped gas formed at H-shaped channels, dumbbell-shaped channels, and microfractures are specific to certain micromodels. The main factors that influence the trapped gas formation are capillary force, hydrodynamic force, Jamin effect (the additional resistance effect of the bubble when it traverses narrow pores), and pore-throat connectivity. Quantitative results reflect that approximately 76% of the trapped gas in the cavity-type micromodel is formed by circumfluence and cutoff phenomenon, whereas approximately 67% of the trapped gas in the other two micromodels is formed at network of microfractures, dead ends, and blind corners. In addition, the ultimate gas recovery of cavity-type reservoirs increases while the displacement differential pressure increases; by contrast, the ultimate gas recovery of fracture-and fracture-cavity-type micromodels increases initially and then decreases with the increase in displacement differential pressure. The visual investigation presented not only improves our intuitive understanding of the gas-water flow mechanism in fracture-cavity carbonate reservoirs but also provides a novel image analysis method for quantitative characterization of visual experiments.
引用
收藏
页码:213 / 226
页数:14
相关论文
共 42 条
[1]   An experimental study of gas sequestration efficiency using water alternating gas and surfactant alternating gas methods [J].
Adebayo, Abdulrauf Rasheed ;
Kamal, Muhammad Shahzad ;
Barri, Assad A. .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2017, 42 :23-30
[2]   Influence of pore structure parameters on flow characteristics based on a digital rock and the pore network model [J].
An, Senyou ;
Yao, Jun ;
Yang, Yongfei ;
Zhang, Lei ;
Zhao, Jianlin ;
Gao, Ying .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2016, 31 :156-163
[3]  
Bahralolom I.M., 1988, SPE RESERVOIR ENG J, V3, P213, DOI DOI 10.2118/15079-PA
[4]   Preformed particle gel for conformance control: Transport mechanism through porous media [J].
Bai, Baojun ;
Liu, Yuzhang ;
Coste, J.-P. ;
Li, Liangxiong .
SPE RESERVOIR EVALUATION & ENGINEERING, 2007, 10 (02) :176-184
[5]  
Bonnet J, 1977, REV I FR PETROL, V42, P477
[6]   Creation of a dual-porosity micromodel for pore-level visualization of multiphase flow [J].
Buchgraber, M. ;
Al-Dossary, M. ;
Ross, C. M. ;
Kovscek, A. R. .
JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2012, 86-87 :27-38
[7]  
Chatenever A., 1952, J. Pet. Technol, V4, P149, DOI [10.2118/135-G, DOI 10.2118/135-G]
[8]   Gas bubble dynamics - experiment and fractal analysis [J].
Cieslinski, JT ;
Mosdorf, R .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2005, 48 (09) :1808-1818
[9]   DISPLACEMENT MECHANISMS OF MICELLAR SOLUTIONS [J].
DAVIS, JA ;
JONES, SC .
JOURNAL OF PETROLEUM TECHNOLOGY, 1968, 20 (12) :1415-&
[10]   Visualization of asphaltene precipitation and deposition in a uniformly patterned glass micromodel [J].
Doryani, H. ;
Malayeri, M. R. ;
Riazi, M. .
FUEL, 2016, 182 :613-622