受化学腐蚀岩石的强化霍克-布朗(H-B)标准

IF 11.7 1区 工程技术 Q1 MINING & MINERAL PROCESSING International Journal of Mining Science and Technology Pub Date : 2024-05-01 DOI:10.1016/j.ijmst.2024.05.002
Hao Li , Leo Pel , Zhenjiang You , David Smeulders
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引用次数: 0

摘要

地下工程经常会遇到水环境,水与岩石的相互作用会增加孔隙率,从而削弱工程岩石的强度。因此,化学腐蚀岩石的失效准则对于此类结构的稳定性分析和设计至关重要。本研究通过引入动力学孔隙度瞬时值(KPIM),增强了霍克-布朗(Hoek-Brown,H-B)准则对化学腐蚀条件下工程结构的适用性。多尺度实验研究包括核磁共振 (NMR)、X 射线衍射 (XRD)、扫描电子显微镜 (SEM)、pH 值和离子色谱分析以及三轴压缩试验,用于量化孔隙结构变化及其与石灰石在化学-机械耦合 (C-M) 条件下的强度响应之间的联系。通过采用离子色谱法和核磁共振分析,并结合自由面溶解理论的原理,考虑到同向溶解和非同向溶解,建立了一个动力学化学腐蚀模型。该模型旨在计算暴露于不同氢浓度和持续时间的岩石中的动力学孔隙度变化。随后,利用广义混合物规则(GMR),制定了动力学孔隙度依赖性。利用 5 种岩石的压缩试验数据对 KPIM 增强 H-B 标准进行了评估,结果表明该标准与试验结果高度一致,决定系数大于 0.96,平均绝对百分比误差小于 4.84%,均方根偏差小于 5.95 兆帕。最后,澄清了孔隙度瞬时值的物理意义:它是岩石利用约束压力效应能力的指标。
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Enhanced Hoek-Brown (H-B) criterion for rocks exposed to chemical corrosion

Underground constructions often encounter water environments, where water–rock interaction can increase porosity, thereby weakening engineering rocks. Correspondingly, the failure criterion for chemically corroded rocks becomes essential in the stability analysis and design of such structures. This study enhances the applicability of the Hoek-Brown (H-B) criterion for engineering structures operating in chemically corrosive conditions by introducing a kinetic porosity-dependent instantaneous mi (KPIM). A multiscale experimental investigation, including nuclear magnetic resonance (NMR), X-ray diffraction (XRD), scanning electron microscopy (SEM), pH and ion chromatography analysis, and triaxial compression tests, is employed to quantify pore structural changes and their linkage with the strength responses of limestone under coupled chemical-mechanical (C-M) conditions. By employing ion chromatography and NMR analysis, along with incorporating the principles of free-face dissolution theory accounting for both congruent and incongruent dissolution, a kinetic chemical corrosion model is developed. This model aims to calculate the kinetic porosity alterations within rocks exposed to varying H+ concentrations and durations. Subsequently, utilizing the generalized mixture rule (GMR), the kinetic porosity-dependent mi is formulated. Evaluation of the KPIM-enhanced H-B criterion using compression test data from 5 types of rocks demonstrated a high level of consistency between the criterion and the experimental results, with a coefficient of determination greater than 0.96, a mean absolute percentage error less than 4.84%, and a root-mean-square deviation less than 5.95 MPa. Finally, the physical significance of the porosity-dependent instantaneous mi is clarified: it serves as an indicator of a rock’s capacity to leverage the confining pressure effect.

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来源期刊
International Journal of Mining Science and Technology
International Journal of Mining Science and Technology Earth and Planetary Sciences-Geotechnical Engineering and Engineering Geology
CiteScore
19.10
自引率
11.90%
发文量
2541
审稿时长
44 days
期刊介绍: The International Journal of Mining Science and Technology, founded in 1990 as the Journal of China University of Mining and Technology, is a monthly English-language journal. It publishes original research papers and high-quality reviews that explore the latest advancements in theories, methodologies, and applications within the realm of mining sciences and technologies. The journal serves as an international exchange forum for readers and authors worldwide involved in mining sciences and technologies. All papers undergo a peer-review process and meticulous editing by specialists and authorities, with the entire submission-to-publication process conducted electronically.
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