Recent advancements for cement grout diffusion mechanisms within rock fractures

IF 7
Haizhi Zang, Shanyong Wang
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引用次数: 0

Abstract

Understanding cement grout diffusion in rock fractures is crucial for rock engineering, yet grouting faces significant challenges due to fracture network heterogeneity and grout's complex non-Newtonian rheology. This study critically reviews recent theoretical, experimental, and numerical advancements to comprehensively understand cement grout diffusion mechanisms within rock fractures. It begins by discussing theoretical foundations, encompassing both continuum and particulate views in single fractures, while also highlighting limitations in extending these simplified concepts to fracture networks and defining robust stop criteria. Subsequently, the article details developments in experiments, including novel apparatus and advanced monitoring techniques. These enable controlled observation of grout diffusion in artificial or simulated fractures, providing crucial insights into the impact of fracture complexities (e.g., fracture roughness, two-phase flow) on grout patterns and sealing efficiency. These laboratory tests also inform the development of practical stop criteria by revealing actual grout behaviour under various conditions. Complementary numerical methods offer a distinct advantage by providing dynamic, continuous solutions for complex fracture networks that are otherwise intractable. Collectively, these diverse approaches bridge critical knowledge gaps, from fundamental principles to real-world complexities, and facilitate cross-scale validation. The review concludes by identifying persistent challenges, such as integrating multi-scale descriptions and simulating true field complexities, and outlines future research directions to understand grout diffusion mechanisms.
岩石裂隙内水泥浆扩散机制研究进展
了解水泥浆液在岩石裂缝中的扩散对岩石工程至关重要,但由于裂缝网络的非均质性和浆液复杂的非牛顿流变性,注浆面临着巨大的挑战。本研究批判性地回顾了最近的理论、实验和数值进展,以全面了解岩石裂缝内水泥灌浆扩散机制。首先讨论了理论基础,包括单个裂缝的连续体和颗粒视图,同时也强调了将这些简化概念扩展到裂缝网络和定义稳健停止标准的局限性。随后,文章详细介绍了实验的发展,包括新的仪器和先进的监测技术。这些技术可以控制观察人工或模拟裂缝中的浆液扩散,为裂缝复杂性(例如裂缝粗糙度、两相流)对浆液模式和密封效率的影响提供重要见解。这些实验室测试还通过揭示各种条件下实际的灌浆行为,为实际停止标准的制定提供信息。互补数值方法具有明显的优势,可以为复杂的裂缝网络提供动态、连续的解决方案。总的来说,这些不同的方法弥合了关键的知识差距,从基本原理到现实世界的复杂性,并促进了跨规模的验证。总结指出了持续存在的挑战,如整合多尺度描述和模拟真实的现场复杂性,并概述了未来的研究方向,以了解浆液扩散机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
2.40
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0.00%
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