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Wang, D.M., Cheng, J.C. and Yang, Q.Y. (2000) Viscouselastic polymer can increase in cores. SPE 63227, Dallas, Texas, 719-728.

  • Listed: 15 June 2026 16 h 16 min

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Wang, D.M., Cheng, J.C. and Yang, Q.Y. (2000) Viscouselastic polymer can increase in cores. SPE 63227, Dallas, Texas, 719-728.

“Wang, D.M., Cheng, J.C. and Yang, Q.Y. (2000) Viscouselastic polymer can increase in cores. SPE 63227, Dallas, Texas, 719-728.”

The world of petroleum engineering and Enhanced Oil Recovery (EOR) techniques has seen significant advancements in recent years, with researchers continually exploring innovative methods to improve oil extraction efficiency. One such development, highlighted in the work of Wang, D.M., Cheng, J.C., and Yang, Q.Y. in 2000, revolves around the use of viscoelastic polymers in core flooding experiments. The study, presented at the Society of Petroleum Engineers (SPE) conference in Dallas, Texas, shed light on the potential of these polymers to increase oil recovery in cores, paving the way for more effective EOR strategies.

Viscoelastic polymers, known for their unique rheological properties, have been found to exhibit both viscous and elastic characteristics, making them an attractive option for improving the mobility of fluids in porous media. In the context of EOR, these polymers can be used to enhance the viscosity of the displacing fluid, thereby increasing the efficiency of oil displacement and leading to higher recovery rates. The study by Wang et al. (2000) demonstrated the effectiveness of viscoelastic polymers in increasing oil recovery in cores, with results showing a significant improvement in oil displacement compared to traditional polymer flooding methods. This breakthrough has significant implications for the oil and gas industry, as it offers a potential solution to the long-standing challenge of maximizing oil recovery from mature fields.

The application of viscoelastic polymers in EOR has been a topic of increasing interest in recent years, with researchers exploring their potential in various settings, including core flooding experiments and field-scale applications. The use of these polymers has been shown to offer several advantages, including improved oil displacement efficiency, reduced water cut, and increased overall oil recovery. Furthermore, viscoelastic polymers have been found to be compatible with a range of reservoir conditions, making them a versatile option for EOR operations. As the industry continues to seek innovative solutions to optimize oil recovery, the work of Wang et al. (2000) serves as a valuable foundation for further research and development in this area.

In conclusion, the study by Wang, D.M., Cheng, J.C., and Yang, Q.Y. (2000) on the use of viscoelastic polymers in core flooding experiments has far-reaching implications for the oil and gas industry. The potential of these polymers to increase oil recovery in cores has been clearly demonstrated, and their application in EOR operations offers a promising solution to the challenges of maximizing oil recovery from mature fields. As researchers and industry professionals continue to explore the possibilities of viscoelastic polymers, it is likely that we will see significant advancements in EOR technologies, ultimately leading to more efficient and effective oil recovery methods. With the increasing demand for innovative solutions to optimize oil recovery, the work of Wang et al. (2000) serves as a testament to the importance of ongoing research and development in this field, and highlights the potential for viscoelastic polymers to play a key role in shaping the future of EOR.

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