压裂液
盐(化学)
聚合物
化学工程
材料科学
高分子科学
石油工程
化学
复合材料
有机化学
地质学
工程类
作者
Xianzheng Li,Chunfu Pan,Hao Chen,Zheng Zhang,Kun Ning
出处
期刊:ACS omega
[American Chemical Society]
日期:2025-02-20
卷期号:10 (8): 8281-8291
被引量:4
标识
DOI:10.1021/acsomega.4c10023
摘要
The development of deep oil and gas resources faces the challenge of high-temperature environments, where the performance of traditional fracturing fluids is limited. Therefore, there is an urgent need to develop fracturing fluid systems capable of withstanding high-temperature (up to 200 °C) and high-salinity (up to 45 g/L NaCl and multivalent ions) environments. This study explores the preparation and performance evaluation of a novel high-temperature (up to 200 °C) and salt-resistant (up to 45 g/L NaCl and multivalent ions) hydrophobically associated polymer fracturing fluid, focusing on its thickening mechanism and stability under extreme reservoir conditions. Key equipment used includes a rheometer for viscosity measurements and an environmental scanning electron microscope for microstructure observation. The base fluid maintained an apparent viscosity of 32.4 mPa·s at 200 °C, demonstrating excellent thermal stability. Long-term evaluations showed a viscosity retention rate of 94.9% after 90 days in high-salinity conditions, indicating outstanding durability. Sand-carrying tests revealed ceramic grain settling rates below 0.48 cm/min, confirming strong suspension capability. The fracturing fluid system exhibited low formation damage rates of 16.85% and minimal proppant pack damage, with a conductivity reduction of only 20.08%, both well below industry standards. These findings provide technical support for efficient fracturing operations in deep and ultradeep wells, particularly in environments with temperatures up to 200 °C and salinities exceeding 45 g/L NaCl, contributing to the development of fracturing fluids for such challenging conditions.
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