Recycling gold mine tailings into eco-friendly backfill material for a coal mine goaf: Performance insights, hydration mechanism, and engineering applications

IF 6.9 2区 环境科学与生态学 Q1 ENGINEERING, CHEMICAL
Tianhua Wu , Yongtao Gao , Maowei Ji , Jingkui Zhou , Changfu Huang , Meng Zhang , Yulong Zou , Yu Zhou
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Abstract

Recycling gold mine overflow tailings for coal mine filling is crucial for sustainable mining. In this work, an eco-friendly, performance-controllable overflow tailings-fly ash-based backfill material is developed for coal mine filling. The effects of three critical factors, namely, the slurry concentration (SC), cement-sand ratio (C:S), and tailings-fly ash ratio (T:F), on the workability and uniaxial compressive strength (UCS) properties of the novel backfill material are thoroughly investigated, and an optimization of the corresponding formulation is conducted. The optimal formula for the backfill is determined to be a CS of 60 %, a C:S of 0.10, and a T:F of 6:6. The hydration mechanism of the chosen typical mixtures is analyzed via X-ray diffraction (XRD), Scanning electron microscopy (SEM), and Fourier transform infrared (FTIR) spectroscopy, and the results show that a needle-like Aft gel, identified as the major gelatinous product, is intricately intertwined to create an intricate network structure. As the T:F increases, the content of calcium and silicon oxide initially decreases but then increases, and the optimal mixture reaches a minimum value of 63.66 %. The optimum specimen exhibits a peak wavenumber at 1109.46 cm−1 involving a Si-O stretching vibration bond. A comprehensive filling program at the Liangjia Coal Mine is successfully implemented. Approximately 0.27 tons of overflow tailings are utilized for every ton of backfills. The underground core-pulling backfill achieves a peak uniaxial compressive strength (UCS) of 7.56 MPa after 28 d, surpassing design requirements and showing promise for coal mine filling applications. This study is expected to achieve the transformation of a coal mine goaf into a gold mine tailings pond.
将金矿尾矿回收利用为煤矿巷道的环保回填材料:性能见解、水化机理和工程应用
回收利用金矿溢流尾矿用于煤矿充填对可持续采矿至关重要。本研究开发了一种生态友好、性能可控的溢流尾矿-粉煤灰基回填材料,用于煤矿充填。深入研究了泥浆浓度(SC)、水泥-砂比(C:S)和尾矿-粉煤灰比(T:F)这三个关键因素对新型回填材料工作性和单轴抗压强度(UCS)性能的影响,并对相应配方进行了优化。确定回填材料的最佳配方为:CS 为 60%,C:S 为 0.10,T:F 为 6:6。通过 X 射线衍射 (XRD)、扫描电子显微镜 (SEM) 和傅立叶变换红外光谱 (FTIR) 分析了所选典型混合物的水合机制,结果表明针状 Aft 凝胶是主要的胶状产物,它错综复杂地交织在一起,形成了错综复杂的网络结构。随着 T:F 的增加,钙和氧化硅的含量最初会减少,但随后会增加,最佳混合物的最小值为 63.66%。最佳试样在 1109.46 cm-1 处显示了一个涉及 Si-O 伸展振动键的峰值波长。梁家煤矿成功实施了综合充填计划。每回填一吨溢流尾矿,就可利用约 0.27 吨溢流尾矿。井下抽芯回填 28 d 后的单轴抗压强度(UCS)峰值达到 7.56 MPa,超过了设计要求,显示了煤矿充填应用的前景。这项研究有望实现煤矿围岩到金矿尾矿库的转变。
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来源期刊
Process Safety and Environmental Protection
Process Safety and Environmental Protection 环境科学-工程:化工
CiteScore
11.40
自引率
15.40%
发文量
929
审稿时长
8.0 months
期刊介绍: The Process Safety and Environmental Protection (PSEP) journal is a leading international publication that focuses on the publication of high-quality, original research papers in the field of engineering, specifically those related to the safety of industrial processes and environmental protection. The journal encourages submissions that present new developments in safety and environmental aspects, particularly those that show how research findings can be applied in process engineering design and practice. PSEP is particularly interested in research that brings fresh perspectives to established engineering principles, identifies unsolved problems, or suggests directions for future research. The journal also values contributions that push the boundaries of traditional engineering and welcomes multidisciplinary papers. PSEP's articles are abstracted and indexed by a range of databases and services, which helps to ensure that the journal's research is accessible and recognized in the academic and professional communities. These databases include ANTE, Chemical Abstracts, Chemical Hazards in Industry, Current Contents, Elsevier Engineering Information database, Pascal Francis, Web of Science, Scopus, Engineering Information Database EnCompass LIT (Elsevier), and INSPEC. This wide coverage facilitates the dissemination of the journal's content to a global audience interested in process safety and environmental engineering.
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