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A review on lead slag generation, characteristics, and utilization

机译:关于铅渣,特征和利用率的综述

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Lead slag is produced by the primary and secondary lead industry. The large amount of lead slag discharge causes environmental problems. Reducing the toxicity and increasing utilization of lead slag are important measures to solve the negative impact of lead slag on the environment. Here, we review the lead slag physical and chemical characteristics, as well as environmental impacts. This review focuses on the utilization of lead slag: recovery of metals and used for construction materials. Various processes for metal recovery including pyrometallurgical, hydrometallurgical, and bioleaching methods are summarized. Coal-based direct reduction is a typical pyrometallurgical technology for recovering metals from lead slag, which has the characteristics of high recovery efficiency, high energy consumption and suitable for industrial production. Chloride, acetic acid, and HNO3-based leaching systems are mainly used in hydrometallurgy of lead slag. The waste reagents and residues produced in hydrometallurgy process inevitably increase the environmental risk. Bioleaching is an environmentally friendly technology, but it is currently limited to laboratory scale. We also discuss the utilization of lead slag in construction materials. The use of lead slag in road construction and concrete will cause environmental risk of leaching toxic elements. The utilization rate of lead slag in cement clinker is extremely low. Geopolymers and glass-ceramics have good stabilization effect on toxic elements. However, the extensive use of alkaline activators limits the large-scale application of geopolymers. High energy consumption of glass-ceramics should be considered. Finally, the limitations and prospects for future research of lead slag utilization are also considered.
机译:铅渣由初级和二级引导行业生产。大量的铅渣放电会导致环境问题。降低毒性和铅渣的利用率越来越重要是解决铅渣对环境的负面影响的重要措施。在这里,我们审查了铅渣物理和化学特征,以及环境影响。本综述侧重于利用铅渣:回收金属并用于建筑材料。总结了包括高温冶金,氢冶金和生物浸涂方法的各种金属回收方法。基于煤的直接减少是一种典型的Pyrome冶金技术,用于从铅渣中回收金属,具有高回收效率,高能耗以及适合工业生产的特点。氯化物,乙酸和HNO3的浸出系统主要用于铅矿渣的氢料。氢管过程中产生的废物试剂和残留物不可避免地增加环境风险。生物浸润是一种环保技术,但目前目前仅限于实验室规模。我们还探讨了建筑材料中铅渣的利用。在道路建设和混凝土中使用铅渣将导致浸出有毒元素的环境风险。水泥熟料中的铅渣的利用率极低。地质聚合物和玻璃陶瓷对有毒元素具有良好的稳定效果。然而,广泛使用碱性激活剂限制了地质聚合物的大规模应用。应考虑高能量消耗玻璃陶瓷。最后,还考虑了未来铅渣利用研究的局限和前景。

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