Experimental Investigation of Recycling Cement Kiln Dust (CKD) as a Co-Binder Material in Cemented Paste Backfill (CPB) Made with Copper Tailings

IF 2.2 4区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS Minerals Pub Date : 2024-07-25 DOI:10.3390/min14080750
Ali Y. Al-Bakri, Haitham M. Ahmed, Mohammed A. Hefni
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Abstract

Cement production may involve excessive use of natural resources and have negative environmental impacts, as energy consumption and CO2 emissions can cause air pollution and climate change. Cement kiln dust (CKD), a by-product waste material, is also a primary issue associated with cement production. Utilizing CKD in mining applications is a pathway to eco-sustainable solutions. Cemented paste backfill (CPB) made with mine tailings is an efficient method for void backfilling in underground mines. Therefore, this study investigated the eco-sustainable utilization of CKD as a co-binder material that can partially replace cement in CPB prepared with copper tailings. At 7, 14, 28, 56, and 90-day curing times, the experimental campaign measured the physical and mechanical parameters of the cured CPB samples, including density, UCS, and elastic modulus (stiffness). Additionally, the CPB-cured mixes were analyzed using XRF, X-ray XRD, SEM, and EDX techniques to link the mineral phases and microstructure to mechanical performance. Four proportions (5, 10, 15, and 20%) of CKD represented in 75 samples were prepared to replace ordinary Portland cement (OPC) in the CPB mixtures, in addition to the reference mix (control) with 0% CKD. As all combinations exceed the compressive strength of CPB required for achieving stability in underground mines, the results showed that CKD could be utilized advantageously as a partial substitute for OPC with a proportion of up to 20% in the CPB mixture. When tested after 90 days, the combination modified with 5% CKD exhibited comparatively higher compressive strength than the control mixture.
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回收水泥窑粉尘 (CKD) 作为铜尾矿制成的水泥浆回填 (CPB) 中的辅助粘结材料的实验研究
水泥生产可能会过度使用自然资源并对环境造成负面影响,因为能源消耗和二氧化碳排放会造成空气污染和气候变化。水泥窑粉尘(CKD)是一种副产品废料,也是与水泥生产相关的主要问题。在采矿应用中利用水泥窑粉尘是实现生态可持续发展解决方案的一条途径。用矿山尾矿制成的水泥浆回填(CPB)是地下矿山空隙回填的有效方法。因此,本研究探讨了如何以生态可持续的方式利用 CKD 作为辅助粘结剂材料,在用铜尾矿制备的 CPB 中部分替代水泥。在 7、14、28、56 和 90 天的固化时间内,实验活动测量了固化 CPB 样品的物理和机械参数,包括密度、UCS 和弹性模量(刚度)。此外,还使用 XRF、X 射线 XRD、SEM 和 EDX 技术分析了 CPB 固化混合料,以便将矿物相和微观结构与机械性能联系起来。除了 CKD 含量为 0% 的参考混合料(对照组)外,还制备了 75 个样品中的四种比例(5%、10%、15% 和 20%)的 CKD,以取代 CPB 混合料中的普通硅酸盐水泥(OPC)。由于所有组合的抗压强度都超过了在地下矿井中实现稳定性所需的 CPB 抗压强度,因此结果表明,在 CPB 混合物中,CKD 的比例最高可达 20%,可作为 OPC 的部分替代品而发挥优势。在 90 天后的测试中,添加了 5% CKD 的改性组合的抗压强度高于对照组混合物。
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来源期刊
Minerals
Minerals MINERALOGY-MINING & MINERAL PROCESSING
CiteScore
4.10
自引率
20.00%
发文量
1351
审稿时长
19.04 days
期刊介绍: Minerals (ISSN 2075-163X) is an international open access journal that covers the broad field of mineralogy, economic mineral resources, mineral exploration, innovative mining techniques and advances in mineral processing. It publishes reviews, regular research papers and short notes. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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