岩溶流动地下水的创新密封方法:充浆袋密封后二次注浆机理的数值分析

IF 3.6 2区 工程技术 Q2 ENGINEERING, GEOLOGICAL
Piao Miao, Fusheng Zha, Qiao Wang, Shijin Feng, Hongxin Chen, Lin Mu
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引用次数: 0

摘要

岩溶地区地下水污染对生态环境和公众健康构成严重威胁。岩溶输水管道的有效密封仍然是目前工程中的一大难题。介绍了灌浆袋封堵与二次灌浆相结合的新型封堵技术。通过计算流体力学模拟,分析了灌浆袋与岩溶管道基岩边界间隙处流水二次灌浆过程中浆液的充填与扩散机理。研究了水流速度、灌浆速率和灌浆袋尺寸的影响。研究结果表明,水流速度是影响二次注浆密封效果的关键因素。当水流速度超过0.1 m/s时,注浆效果受到显著影响。然而,提高注浆速度可以抵消这种影响。当注浆速度超过水流速度时,注浆充填率增大。当间隙尺寸为0.7 ~ 0.8 m时,浆液填充率最大。在浆液流速相同的情况下,水与浆液的黏度和密度差异导致压力分布不均匀。这导致水压缩和置换注入的浆液,降低了间隙内的浆液填充率。值得注意的是,当注浆速度超过或等于水流速度时,在袋体上游形成动态密封块,为浆液迁移提供了额外的通道,显著增强了密封效果。这些见解对大泄漏管道密封的施工设计,特别是在喀斯特地区具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Innovative Sealing Approaches for Karst Flowing Groundwater: Numerical Analysis of Secondary Grouting Mechanism After Grout‐Filled Bag Sealed
Groundwater pollution in karst regions poses a serious threat to the ecological environment and public health. Effective sealing of karst conduits with flowing water still remains a significant engineering challenge at present. This study introduces an innovative sealing technique combining grout‐filled bag plugging with secondary grouting. Mechanism of grout filling and diffusion during secondary grouting in flowing water at the gap between grout‐filled bag and bedrock boundary of the karst conduit was analyzed through computational fluid dynamics simulations. Effect of water flow velocities, grouting rates, and grout‐filled bag dimensions was investigated. Our results indicate that water flow velocity is a pivotal factor in secondary grout sealing efficacy. Grouting effectiveness is significantly impacted when water flow velocity exceeds 0.1 m/s. However, increasing grouting speed can counteract this effect. When grouting speed exceeds water flow velocity, the grout filling ratio increases. Grout filling ratio reaches its maximum when gap sizes range from 0.7 to 0.8 m. Under identical grout flow velocities, the differences in viscosity and density between water and grout create uneven pressure distribution. This causes water to compress and displace the injected grout, reducing the grout filling ratio within the gap. Notably, when grouting speed surpasses or equals the flowing water rate, a dynamic sealing mass forms upstream of the bag, providing additional pathways for grout migration and significantly bolstering the sealing effect. These insights are instrumental for the construction design of large leakage conduit sealing, especially within karst regions.
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来源期刊
CiteScore
6.40
自引率
12.50%
发文量
160
审稿时长
9 months
期刊介绍: The journal welcomes manuscripts that substantially contribute to the understanding of the complex mechanical behaviour of geomaterials (soils, rocks, concrete, ice, snow, and powders), through innovative experimental techniques, and/or through the development of novel numerical or hybrid experimental/numerical modelling concepts in geomechanics. Topics of interest include instabilities and localization, interface and surface phenomena, fracture and failure, multi-physics and other time-dependent phenomena, micromechanics and multi-scale methods, and inverse analysis and stochastic methods. Papers related to energy and environmental issues are particularly welcome. The illustration of the proposed methods and techniques to engineering problems is encouraged. However, manuscripts dealing with applications of existing methods, or proposing incremental improvements to existing methods – in particular marginal extensions of existing analytical solutions or numerical methods – will not be considered for review.
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