Yang Faguang, Wu Fan, Yang Baogui, Li Litao, Gao Qian
School of Energy and Mining Engineering, China University of Mining & Technology (Beijing), Beijing, 100083, China.
School of Civil and Resource Engineering, University of Science and Technology Beijing, Beijing, 100083, China.
Chemosphere. 2022 Dec;309(Pt 1):136649. doi: 10.1016/j.chemosphere.2022.136649. Epub 2022 Sep 28.
The utilization of blast furnace slag (BFS) and fly ash (FA) to replace ordinary portland cement (OPC) has become a hot topic in the preparation of low-cost cemented paste backfill (CPB). This study has prepared a composite activated slag-based binder (CASB) using BFS and FA as the basic raw materials and desulfurization gypsum (DG) and cement clinker (CC) as the activator. The optimum ratio of CASB was determined based on the orthogonal test and the efficacy coefficient method. The hydration products and hydration mechanism of CASB materials were further investigated using XRD, TG, and SEM tests; on this basis, the compressive strength of hardened CASB-CPB under different working conditions and the rheological properties of fresh slurry were investigated, and the cost analysis and environmental effects of CASB were carried out. The results show that the optimum ratio of CASB was 15:12:13:60 for FA: CC: DG: BFS; the hydration mechanism of CASB was the coupled alkali-sulfate activation of CC and DG, and the main hydration products were hydrated calcium silicate gels (C-S-H gels) and ettringite (AFt); increasing the mass concentration (C) at a constant cement-aggregate ratio (C/A), which caused a significant improvement in the compressive strength at 7 and 28 d while reduced the flowability of the slurry; CASB considerably reduced the filling cost compared to OPC, and effectively immobilization the heavy metals in the tailings. This paper has developed a cement alternative binder of CASB, which has considerable significance for the comprehensive utilization of solid waste, reduction of filling costs, and improvement of economic and ecological benefits of the mine.
利用高炉矿渣(BFS)和粉煤灰(FA)替代普通硅酸盐水泥(OPC)已成为制备低成本胶结充填料(CPB)的热门话题。本研究以BFS和FA为基本原料,以脱硫石膏(DG)和水泥熟料(CC)为活化剂,制备了一种复合活性矿渣基胶凝材料(CASB)。基于正交试验和功效系数法确定了CASB的最佳配比。利用XRD、TG和SEM测试进一步研究了CASB材料的水化产物和水化机理;在此基础上,研究了不同工况下硬化CASB-CPB的抗压强度和新鲜料浆的流变性能,并对CASB进行了成本分析和环境影响分析。结果表明,CASB的最佳配比为FA:CC:DG:BFS = 15:12:13:60;CASB的水化机理是CC和DG的碱-硫酸盐耦合活化,主要水化产物为水化硅酸钙凝胶(C-S-H凝胶)和钙矾石(AFt);在水泥-骨料比(C/A)不变的情况下增加质量浓度(C),可显著提高7 d和28 d时的抗压强度,但会降低料浆的流动性;与OPC相比,CASB大大降低了充填成本,并有效固定了尾矿中的重金属。本文开发了一种CASB水泥替代胶凝材料,对固体废弃物的综合利用、降低充填成本以及提高矿山的经济和生态效益具有重要意义。