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超深超高温油气藏改性胍胶压裂液体系及性能优化

Modified guanidine gel fracturing fluid system and performance optimization for ultra-deep and ultra-high temperature oil and gas reservoirs.

作者信息

Wu Huimei, Zhai Xiaopeng, Li Yinyan, Li Jian, Li Zhonghui, Sun Wentie

机构信息

National Engineering Research Center for Oil and Gas Drilling and Completion Technology, Yangtze University, Wuhan, 430100, Hubei, China.

Hubei Key Laboratory of Oil and Gas Drilling and Production Engineering, Yangtze University, Wuhan, 430100, Hubei, China.

出版信息

Sci Rep. 2024 Sep 5;14(1):20764. doi: 10.1038/s41598-024-70976-5.

Abstract

The development of deep high-temperature oil and gas reservoirs gives rise to a rise in reservoir temperature along with the depth of the oil reservoir, thereby imposing higher requirements on the heat resistance of fracturing fluid. Guar gum fracturing fluid has difficulty tolerating temperatures exceeding 160 °C, thereby demanding the development of corresponding cross-linking agents, temperature stabilizers, and other additives to enhance the thermal stability of the fracturing system. Considering the distinctive characteristics of deep and ultra-deep reservoirs, such as extreme burial depth (exceeding 6000 m), ultra-high temperature (higher than 160 °C), and high fracturing pressure, an experimental modification of a guar gum fracturing fluid system was carried out, specifically tailored for ultra-high temperatures. The experiment identified and selected individual agents for ultra-high temperature fracturing fluids, including crosslinking agents, thermal stabilizers, flowback aids, and clay inhibitors. Through rigorous experimentation, these key agents for an ultra-high temperature fracturing fluid system have been successfully developed, including the optimal thickener GBA1-2, crosslinking agent BA1-1, anti-swelling agent FB-1, and gel breaker TS-1. The evaluation of diverse additive dosages has facilitated the development of an optimal guar fracturing fluid system, which exhibits outstanding high-temperature resistance while minimizing damage and friction. The outcomes of our experiments indicate that even after subjecting our ultra-high temperature fracturing fluid to 2 h of shearing at 170 s at 180 °C, its viscosity remained above 200 mPa s-a distinct proof of its superior performance in withstanding high temperatures. This achievement represents a substantial progress in providing a suitable fracturing fluid system for the transformation and stimulation of ultra-deep and ultra-high temperature reservoirs, and also lays a solid foundation for further exploration and application in related fields in the future.

摘要

深层高温油气藏的开发使得油藏温度随油藏深度增加而升高,从而对压裂液的耐热性提出了更高要求。瓜尔胶压裂液难以耐受超过160℃的温度,因此需要开发相应的交联剂、温度稳定剂和其他添加剂来提高压裂体系的热稳定性。考虑到深层和超深层油藏的独特特征,如极端埋藏深度(超过6000米)、超高温(高于160℃)和高压裂压力,对瓜尔胶压裂液体系进行了针对超高温的实验性改性。该实验确定并筛选了超高温压裂液的单剂,包括交联剂、热稳定剂、助排剂和黏土抑制剂。通过严格的实验,成功开发了超高温压裂液体系的这些关键单剂,包括最优增稠剂GBA1-2、交联剂BA1-1、防膨剂FB-1和破胶剂TS-1。对不同添加剂用量的评价有助于开发出最优瓜尔胶压裂液体系,该体系具有出色的耐高温性能,同时将损害与摩擦降至最低。我们的实验结果表明,即使将我们的超高温压裂液在180℃下以170秒的剪切速率剪切2小时后,其黏度仍保持在200毫帕秒以上,这明显证明了其在耐高温方面的卓越性能。这一成果在为超深层和超高温油藏的改造与增产提供合适的压裂液体系方面取得了重大进展,也为未来相关领域的进一步勘探与应用奠定了坚实基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/14bd/11377766/c2c6e23d52c8/41598_2024_70976_Fig1_HTML.jpg

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