Investigation of the crosslinking process of polymer materials to enchance the efficiency of waterproofing compounds

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Abstract

Background: Currently, a significant portion of the oil fields in Kazakhstan are at the final stages of development, characterised by a steady decline in oil production and a progressive increase in water cut. These processes greatly diminish the efficiency of reservoir operation and make managing hydrocarbon displacement systems more complex. Under current conditions, technologies aimed at limiting and isolating water inflows are becoming increasingly relevant as a key element in enhancing the efficiency of field development. One promising approach in this area is the use of gel-polymer systems capable of selectively blocking highly permeable, water-saturated zones and redirecting filtration flows toward oil-saturated intervals. This allows for a significant increase in oil recovery and improves the technical and economic performance of reservoir development.

Aim: The study aims to investigate the cross-linking process of polymer gels and to evaluate the key parameters of this process using various methods.

Materials and methods: Special attention has been paid to the development and implementation of a rheological method for accurate quantitative determination of gel cross-linking time, which significantly enhances the objectivity and reproducibility of results compared to traditional visual assessment, which is currently the only generally accepted method.

Results: It has been established that visually complete crosslinking occurs in 1.5–2 hours after the preparation of solutions. At the same time, rheometric measurements showed that crosslinking occurred significantly earlier. This confirms the higher accuracy and sensitivity of the instrumental method.

Conclusion: The studies confirmed that rheometric methods allow high-precision determination of the time and degree of polymer crosslinking, which is impossible with visual assessment. This provides operators with more reliable information about the gel structure formation process and allows them to control the key parameters of gel formation at early stages. The data obtained emphasise the importance of rheometry as a reliable tool for objective evaluation of polymer crosslinking. Such evaluation plays a crucial role in the design and implementation of gel-polymer systems in oil recovery enhancement technology, especially in conditions of complicated geology and high water cut.

About the authors

Sultangali E. Abdykalykov

Branch of KMG Engineering “KazNIPImunaigaz”

Email: S.Abdykalykov@kmge.kz
ORCID iD: 0009-0008-2503-4537
Kazakhstan, Aktau

Valentina V. Sabaldash

Branch of KMG Engineering KazNIPImunaigaz

Author for correspondence.
Email: v.sabaldash@kmge.kz
ORCID iD: 0009-0004-0158-1852
Kazakhstan, Aktau

References

  1. Derendyaev RA, Zakharov LA, Martyushev DA, Derendyaev KA. Improving the efficiency of application of technology on water performance limitation based on geological and physical characteristics of the plates (on the example of deposits of The Perm Region). Bulletin of the Tomsk Polytechnic University. Geo Аssets Engineering. 2019;330(9):154–163. doi: 10.18799/24131830/2019/9/2264. (In Russ).
  2. Dubinsky GS, Andreev VЕ, Akchurin KI, Kotenev YA. Development of technologies of restriction of water inflow in producering wells. Actual Problems of Oil and Gas. Available from: oilgasjournal.ru/vol_5/dubinsky.html. (In Russ).
  3. Sydansk RD. A Newly Developed Chromium(lll) Gel Technology. SPE Reservoir Engineering. 1990;5(03):346–352. doi: 10.2118/19308-PA.

Supplementary files

Supplementary Files
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2. Figure 1. Example of a visual evaluation of the gel condition

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3. Figure 2. Appearance of automatic rheometer plates with 1 mm gap

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4. Figure 3. The process of crosslinking a polymer system based on polymer 1 for 2 hours а) видимый гель не образуется / no visible gel forms; б) текучий гель / fluid gel; в) легкодеформируемый гель / easily deformable gel; г) слегка деформируемый, но не текучий гель / slightly deformable but not fluid gel; д) звенящий гель / ringing gel

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5. Figure 4. Process of crosslinking a polymer system based on Polymer 2 for 1 h 40 min а) видимый гель не образуется / no visible gel forms; б) гель с высокой текучестью / highly fluid gel; в) текучий гель / fluid gel; г) умеренно текучий гель / moderately fluid gel

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6. Figure 5. Test results of the Polymer 1 solution obtained using an automatic rheometer

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7. с использованием автоматического реометра Figure 6. Test results for a polymer-based solution obtained using an automatic rheometer

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Copyright (c) 2025 Abdykalykov S.E., Sabaldash V.V.

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