Preparation of Low-Molecular-Weight Polyacrylamide as the Delayed Crosslinking Plugging Agent for Drilling Fluid
Abstract
:1. Introduction
2. Results and Discussion
2.1. Optimization of Low-Molecular-Weight Polyacrylamide
2.1.1. Optimization of Initiator
2.1.2. Optimization of Monomer Concentration
2.1.3. Optimization of Initiator Concentration
2.1.4. Optimization of Synthesis Temperature
2.2. Characterization of Low-Molecular-Weight Polyacrylamide
2.2.1. Characterization of FT-IR
2.2.2. Gel Permeation Chromatography
2.3. Formulation Optimization of Delayed Crosslinking Low-Molecular-Weight Polyacrylamide Plugging Agent
2.3.1. Optimization of Polymer Concentration
2.3.2. Concentration Optimization of Crosslinking Agent
2.3.3. Concentration Optimization of Retarder
2.4. Comprehensive Properties of Low-Molecular-Weight Polyacrylamide Plugging Agent with Delayed Crosslinking
2.4.1. Rheological Properties
2.4.2. Temperature Resistance
2.4.3. Delayed Crosslinking Performance
2.5. Plugging Performance of Delayed Crosslinking Low-Molecular-Weight Polyacrylamide Plugging Agent
2.5.1. Sealing Characteristics
2.5.2. Salt Resistance
- (1)
- Influence of mineralization on initial viscosity
- (2)
- Influence of mineralization on gelation time
- (3)
- Influence of salinity on gel strength
2.5.3. Pressure Test
3. Conclusions
- (1)
- The low-molecular-weight polyacrylamide prepared using hydrogen peroxide has a controllable gelation time and good flowability before crosslinking. This is more advantageous for pumping during on-site construction. Additionally, the low-molecular-weight polyacrylamide prepared using hydrogen peroxide has higher strength after high-temperature crosslinking.
- (2)
- A low-molecular-weight polyacrylamide was developed, and the optimal synthesis conditions were determined. The optimal conditions include a monomer concentration of 9%, an initiator concentration of 3.5%, and a synthesis temperature of 65 °C.
- (3)
- Using the newly developed low-molecular-weight polyacrylamide as a key treatment agent, a delayed crosslinking formula for the low-molecular-weight polyacrylamide plugging system was optimized. The specific formula consists of 6% polymer, 1% crosslinking agent, and 8% retarder.
- (4)
- The newly developed delayed crosslinking low-molecular-weight polyacrylamide plugging agent has stable rheological properties, and the temperature resistance can reach 150 °C. By adjusting the concentration of the retarder, the gelation time can be controlled, and the maximum can be up to 4 h at 150 °C.
- (5)
- The maximum salt tolerance of the delayed crosslinking low-molecular-weight polyacrylamide plugging agent is 15,000 mg/L, and the plugging rate of the gel plugging agent is more than 95%.
4. Materials and Methods
4.1. Synthetic Materials and Instruments
4.2. Synthesis of Polymer
4.3. Preparation of Gel Solution
4.4. Material Characterization
- (1)
- Rheological testing: The viscosity of the gel solution before crosslinking was measured using a HAKKE MARS III rheometer. The shear rate was set at 170 s−1, and the shear time was 20 min. The viscosity of the gel solution before crosslinking reflects its rheological properties during the injection process into the formation. A lower viscosity corresponds to a lower injection pressure and a lower probability of retention in the wellbore.
- (2)
- High-temperature crosslinking: The gel solution was prepared at room temperature, and its viscosity was measured. The gel solution was then placed in a high-temperature reaction vessel and heated to a predetermined temperature for a specific duration of high-temperature crosslinking. After gelation, the sample was removed and cooled. The crosslinking status of the gel can be visually observed during this process, allowing for evaluation of the gel’s crosslinking state.
- (3)
- Viscoelasticity testing: After cooling the high-temperature crosslinked gel to room temperature, 5 mL of gel was taken out, and the viscoelasticity test was carried out with a HAKKE MARS III rheometer. The test conditions were temperature 30 °C, fixed scanning frequency 1 Hz, and stress 10 Pa. The average value of elastic modulus G’ was obtained. For polymer gels, a higher elastic modulus indicates greater strength and better crack sealing performance.
- (4)
- Gel permeation chromatography: The number-average molecular weight (Mn) and weight-average molecular weight (Mw) of the synthesized polymer samples were measured with gel permeation chromatography (GPC, from Beijing, China, SHIMADZU Co., DGU-20A3R), and the polydispersity index (PDI) was obtained by dividing Mw by Mn. Polyethylene glycol (PEG) was used as eluent with 0.1 mol/L NaNO3 solution.
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Initiator | Character | G’/Pa | Viscosity-Average Molecular Weight |
---|---|---|---|
3% H2O2 | Free flowing | 205 | 173,100 |
3.5% H2O2 | Free flowing | 300 | 569,800 |
5% H2O2 | Free flowing | 236 | 976,500 |
3.5% (NH4)2S2O8 | Mobility difficulties | 261 | 1,566,000 |
7% (NH4)2S2O8 | Mobility difficulties | 229 | 2,384,200 |
Mesh | Permeability before Plugging K1/mD | Permeability after Plugging K2/mD | η/% |
---|---|---|---|
40~60 | 9.1 | 0.241 | 97.35 |
20~40 | 17.1 | 0.512 | 97.01 |
Pressure /MPa | Filtration Loss/mL | |||||
---|---|---|---|---|---|---|
0.05 mm | 0.1 mm | 0.2 mm | 0.5 mm | 1 mm | 2 mm | |
0.5 | 0 | 0 | 0 | 0 | 0 | 0 |
5 | 0 | 0 | 0 | 0 | 0 | 0 |
6 | 0 | 0 | 0 | 0 | 0.255 | 0.95 |
7 | 0 | 0 | 0.041 | 0.108 | 0.587 | 2.822 |
8 | 0 | 0 | 0.043 | 0.653 | 3.804 | 6.05 |
9 | 0 | 0 | 0.046 | 1.305 | 9.655 | 8.766 |
10 | 0 | 0.13 | 0.512 | 2.428 |
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Wang, Q.; Zhou, C.; Zhang, H.; Zhang, X.; Wen, X.; Bai, J.; Mao, H. Preparation of Low-Molecular-Weight Polyacrylamide as the Delayed Crosslinking Plugging Agent for Drilling Fluid. Gels 2024, 10, 112. https://doi.org/10.3390/gels10020112
Wang Q, Zhou C, Zhang H, Zhang X, Wen X, Bai J, Mao H. Preparation of Low-Molecular-Weight Polyacrylamide as the Delayed Crosslinking Plugging Agent for Drilling Fluid. Gels. 2024; 10(2):112. https://doi.org/10.3390/gels10020112
Chicago/Turabian StyleWang, Quanyang, Chenghua Zhou, Honghu Zhang, Xue Zhang, Xinxin Wen, Jiexin Bai, and Hui Mao. 2024. "Preparation of Low-Molecular-Weight Polyacrylamide as the Delayed Crosslinking Plugging Agent for Drilling Fluid" Gels 10, no. 2: 112. https://doi.org/10.3390/gels10020112
APA StyleWang, Q., Zhou, C., Zhang, H., Zhang, X., Wen, X., Bai, J., & Mao, H. (2024). Preparation of Low-Molecular-Weight Polyacrylamide as the Delayed Crosslinking Plugging Agent for Drilling Fluid. Gels, 10(2), 112. https://doi.org/10.3390/gels10020112