Preparation and Characterization of Responsive Cellulose-Based Gel Microspheres for Enhanced Oil Recovery

被引:1
作者
Yin, Peng [1 ,2 ]
Shi, Fang [3 ]
Luo, Mingjian [1 ]
Wu, Jingchun [3 ]
Zhao, Bo [4 ]
Zhang, Chunlong [5 ]
Shen, Yi [3 ]
Chen, Yanbing [6 ]
机构
[1] Northeast Petr Univ, Coll Chem & Chem Engn, Daqing 163318, Peoples R China
[2] Daqing Oilfield Co Ltd, Nat Gas Sub Co, Daqing 163000, Peoples R China
[3] Northeast Petr Univ, Key Lab EOR Technol, Minist Educ, Daqing 163318, Peoples R China
[4] Daqing Oil Field Co Ltd, 6 Oil Prod Plant, Daqing 163000, Peoples R China
[5] Daqing Yongzhu Petr Technol Dev Co Ltd, Daqing 163000, Peoples R China
[6] Shenyang Oil Prod Plant Liaohe Oilfield, Shenyang 110000, Peoples R China
基金
中国国家自然科学基金;
关键词
cellulose-based gel microspheres; enhanced oil recovery; after ASP flooding; alkaline responsive type;
D O I
10.3390/gels10080532
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
As an important means to enhance oil recovery, ternary composite flooding (ASP flooding for short) technology has achieved remarkable results in Daqing Oilfield. Alkalis, surfactants and polymers are mixed in specific proportions and injected into the reservoir to give full play to the synergistic effect of each component, which can effectively enhance the fluidity of crude oil and greatly improve the oil recovery. At present, the technology for further improving oil recovery after ternary composite flooding is not mature and belongs to the stage of technical exploration. The presence of alkaline substances significantly alters the reservoir's physical properties and causes considerable corrosion to the equipment used in its development. This is detrimental to both the environment and production. Therefore, it is necessary to develop green displacement control agents. In the reservoir environment post-ASP flooding, 2-(methylamino)ethyl methacrylate and glycidyl methacrylate were chosen as monomers to synthesize a polymer responsive to alkali, and then grafted with cellulose nanocrystals to form microspheres of alkali-resistant swelling hydrogel. Cellulose nanocrystals (CNCs) modified with functional groups and other materials were utilized to fabricate hydrogel microspheres. The product's structure was characterized and validated using Fourier transform infrared spectroscopy and X-ray diffraction. The infrared spectrum revealed characteristic absorption peaks of CNCs at 1165 cm-1, 1577 cm-1, 1746 cm-1, and 3342 cm-1. The diffraction spectrum corroborated the findings of the infrared analysis, indicating that the functional modification occurred on the CNC surface. After evaluating the swelling and erosion resistance of the hydrogel microspheres under various alkaline conditions, the optimal particle size for compatibility with the target reservoir was determined to be 6 mu m. The potential of cellulose-based gel microspheres to enhance oil recovery was assessed through the evaluation of Zeta potential and laboratory physical simulations of oil displacement. The study revealed that the absolute value of the Zeta potential for gel microspheres exceeds 30 in an alkaline environment with pH values ranging from 7 to 14, exhibiting a phenomenon where stronger alkalinity correlates with a greater absolute value of Zeta potential. The dispersion stability spans from good to excellent. The laboratory oil displacement simulation experiment was conducted using a cellulose-based gel microsphere system following weak alkali ASP flooding within the pH value range from 7 to 10. The experimental interventions yielded recovery rates of 2.98%, 3.20%, 3.31%, and 3.38%, respectively. The study indicates that cellulose-based gel microspheres exhibit good adaptability in alkaline reservoirs. This research offers a theoretical foundation and experimental approaches to enhance oil recovery techniques post-ASP flooding.
引用
收藏
页数:16
相关论文
共 50 条
[21]   Preparation and application of nanofluid flooding based on polyoxyethylated graphene oxide nanosheets for enhanced oil recovery [J].
Cao, Jie ;
Chen, Yingpeng ;
Zhang, Jian ;
Wang, Xiujun ;
Wang, Jia ;
Shi, Chunxiao ;
Ning, Yifan ;
Wang, Xinming .
CHEMICAL ENGINEERING SCIENCE, 2022, 247
[22]   Investigation on Plugging and Profile Control of Polymer Microspheres as a Displacement Fluid in Enhanced Oil Recovery [J].
Nie, Xiangrong ;
Chen, Junbin ;
Cao, Yi ;
Zhang, Jinyuan ;
Zhao, Wenjing ;
He, Yanlong ;
Hou, Yunyi ;
Yuan, Shaomin .
POLYMERS, 2019, 11 (12)
[23]   Study on the synergism of cellulose nanocrystals and janus graphene oxide for enhanced oil recovery [J].
Tiong, Adrian Chiong Yuh ;
Tan, Inn Shi ;
Foo, Henry Chee Yew ;
Lam, Man Kee ;
Ben Mahmud, Hisham ;
Lee, Keat Teong ;
Show, Pau Loke .
GEOENERGY SCIENCE AND ENGINEERING, 2023, 221
[24]   PETROLEUM SULFONATES PREPARATION AND EVALUATION FOR CHEMICAL ENHANCED OIL RECOVERY IN COLOMBIAN OIL FIELDS [J].
del Pilar Pachon-Contreras, Zarith ;
Rojas-Ruiz, Fernando-Andres ;
Rondon-Anton, Miguel-Jose ;
Vidal-Prada, Juliana-Carolina ;
Pulido-Solano, Freddy-Alexander .
CT&F-CIENCIA TECNOLOGIA Y FUTURO, 2014, 5 (05) :55-73
[25]   Laboratory characterization of crude oil and sandstone reservoir for chemical enhanced oil recovery [J].
Hamza, Mohammed Falalu ;
Soleimani, Hassan ;
Sinnathambi, Chandra Mohan ;
Merican, Zulkifli Merican Aljunid ;
Stephen, Karl Dunbar .
WORLD JOURNAL OF ENGINEERING, 2018, 15 (03) :354-361
[26]   A novel foam system stabilized by hydroxylated multiwalled carbon nanotubes for enhanced oil recovery: Preparation, characterization and evaluation [J].
Li, Xu ;
Pu, Chunsheng ;
Chen, Xin .
COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2022, 632
[27]   Characterization of SPN Pickering emulsions for application in enhanced oil recovery [J].
Kumar, Narendra ;
Gaur, Tushar ;
Mandal, Ajay .
JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2017, 54 :304-315
[28]   Synthesis and characterization of a novel active polymer for enhanced oil recovery [J].
Chen, Qingyuan ;
Zhang, Shusong ;
Wang, Zhouxin ;
Ye, Zhongbin ;
Lai, Nanjun .
JOURNAL OF APPLIED POLYMER SCIENCE, 2023, 140 (15)
[29]   The Characterization of Natural Surfactant and Polymer and Their Use in Enhanced Recovery of Oil [J].
Samanta, A. ;
Ojha, K. ;
Mandal, A. .
PETROLEUM SCIENCE AND TECHNOLOGY, 2011, 29 (07) :765-777
[30]   Characterization of Anionic–Nonionic Surfactant Mixtures for Enhanced Oil Recovery [J].
U. A. Aziz ;
N. Adnan ;
M. Z. R. Sohri ;
D. F. Mohshim ;
A. K. Idris ;
M. A. Azman .
Journal of Solution Chemistry, 2019, 48 :1617-1637