高温高压裂缝气藏压裂堵塞带空化诱导剪切破坏机理及失流控制结构加固方法

IF 1.2 4区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS
Geofluids Pub Date : 2024-09-26 DOI:10.1155/2024/8856179
Xiaoming Su, Xiaodong Wang, Yuan Yuan, Yun Ren, Wang Gaoming
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引用次数: 0

摘要

堵塞带的稳定性对压裂储层的失重循环控制和气体入侵预防具有重要影响。本文在分析流场特征的基础上,提出了 "空化诱导剪切失效 "的概念,并对其失效机理进行了探讨。在分析 LCM 特性参数和失效机理的基础上,形成了裂缝堵塞带的强度物理模型。然后进行了空化诱导剪切破坏、气体入侵预防、承压和致密堵塞的模拟实验。研究表明:(1)裂缝堵塞带是一个致密的颗粒物质体系,其内部以接触力和阙桥力为主;(2)空化诱发剪切破坏是裂缝气藏堵塞带的主要破坏模式之一,破坏过程包括三个步骤:气体扩散稀释破坏、汇流携带破坏和位移位错剪切破坏;(3)"刚性桥接+弹性填充+纤维排线+成膜密封 "的堵塞带加固模型是一种较好的模型,实验证明其可以形成紧密的承压堵塞带,防止钻井液流失。该研究成果为压裂气层的循环损失控制提供了理论和技术依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cavitation-Induced Shear Failure Mechanism of Fractured Plugging Zone and Structure Strengthening Method for Lost Circulation Control in High-Temperature and High-Pressure Fractured Gas Reservoirs

Cavitation-Induced Shear Failure Mechanism of Fractured Plugging Zone and Structure Strengthening Method for Lost Circulation Control in High-Temperature and High-Pressure Fractured Gas Reservoirs

The stability of the plugging zone has a great impact on lost circulation control and gas invasion prevention in fractured reservoirs. In this work, the concept of “cavitation-induced shear failure” is put forward based on the analysis of the flow field characteristics, and the failure mechanism is discussed. The strength physical model of a fractured plugging zone is formed based on the analysis of the characteristic parameters of LCMs and the failure mechanism. And then the simulation experiments of cavitation-induced shear failure, gas invasion prevention, pressure bearing, and tight plugging are carried out. The research shows that (1) the fractured plugging zone is a dense granular matter system, and the contact forces and quid bridge force are dominant in its internal; (2) the cavitation-induced shear failure is one of the main failure modes of the plugging zone in a fractured gas reservoir, and the failure process includes three steps: gas diffusion-dilution damage, confluence and carry damage, and displacement dislocation shear failure; (3) the strengthening model of the plugging zone, “rigid bridging+elastoplastic filling+lacing wire of fiber+film-forming seal,” is a better model, and experiments prove that it can form a tight pressure-bearing plugging zone, preventing drill-in fluid loss. The research results provide a theoretical and technical basis for the lost circulation control of fractured gas formations.

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来源期刊
Geofluids
Geofluids 地学-地球化学与地球物理
CiteScore
2.80
自引率
17.60%
发文量
835
期刊介绍: Geofluids is a peer-reviewed, Open Access journal that provides a forum for original research and reviews relating to the role of fluids in mineralogical, chemical, and structural evolution of the Earth’s crust. Its explicit aim is to disseminate ideas across the range of sub-disciplines in which Geofluids research is carried out. To this end, authors are encouraged to stress the transdisciplinary relevance and international ramifications of their research. Authors are also encouraged to make their work as accessible as possible to readers from other sub-disciplines. Geofluids emphasizes chemical, microbial, and physical aspects of subsurface fluids throughout the Earth’s crust. Geofluids spans studies of groundwater, terrestrial or submarine geothermal fluids, basinal brines, petroleum, metamorphic waters or magmatic fluids.
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