铜渣-废塑料复合球团等温还原动力学研究
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作者单位:

1.广西工业职业技术学院, 广西 南宁 530001 ; 2.东北大学, 辽宁 沈阳 110057

作者简介:

李俊(1980—),男,硕士,讲师,研究方向为有色金属资源综合利用。

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中图分类号:

TF811;X758

基金项目:

2020年度广西高校中青年教师科研基础能力提升项目(2020KY39009)


Isothermal reduction kinetics of copper slag-waste plastic composite pellets
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Affiliation:

1.Guangxi Vocational & Technical Institute of Industry, Nanning 53000l, China ; 2.Northeastern University,Shenyang 110057 ,China

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    摘要:

    针对铜渣中铁主要以铁橄榄石形式与SiO2共生、传统方法难以低成本回收的问题,本文以裂解废塑料炭为还原剂,在1000~1250℃条件下通过热失重法详细考察了铜渣-废塑料复合球团的等温还原过程,并进行了反应动力学分析,得到以下主要结论。复合球团的还原过程符合三维气体扩散控制(Ginstling-Brushtein模型),线性拟合得到表观活化能为82.67kJ·mol-1;在1000~1200℃区间金属化率随温度快速上升,1200℃保温30min即达78.3%;温度继续升高液相生成导致孔隙堵塞,金属化率略降;该裂解炭同时提供固相碳和CO、H2活性气体,与常规焦炭体系相比,本体系可在低50~100℃的条件下获得接近的金属化率,说明裂解废塑料炭通过“双重还原剂”效应降低了能垒,缩短了保温时间,并抑制了高温烧结包覆现象。研究表明,利用裂解废塑料炭热还原铜渣不仅可提高铁的回收效率、削减燃料消耗与碳排放,还实现了两类固废的协同资源化。所获动力学参数为后续工业炉型优化、连续供料与磁选联用工艺设计提供数据参考,推进该低碳回收技术的产业化应用。

    Abstract:

    To tackle the difficulty of cost-effective iron recovery from copper slag, where iron predominantly occurs as iron olivine intimately bound with SiO2, pyrolyzed waste-plastic char was adopted as the reductant. The char was blended with copper slag to form composite pellets, which were subjected to isothermal thermogravimetric tests at 1000~1250℃. During reduction the char supplies both solid carbon and in-situ-generated CO and H2; the real-time mass loss of the pellets was recorded and converted to the reduction fraction. The results show that: the reduction course follows a three-dimensional gas-diffusion mechanism (Ginstling-Brushtein model), yielding an apparent activation energy of 82.67kJ mol-1; the metallization rate rises sharply with temperature between 1000 and 1200℃, reaching 78.3% after holding at 1200℃ for 30min; further heating produces liquid phases that block porosity and slightly decrease the metallization degree; compared with conventional coke reduction, an equivalent metallization rate can be achieved at temperatures 50~100℃ lower, indicating that the “dual-reductant” effect of the plastic char lowers the energy barrier, shortens holding time and mitigates high-temperature sintering/encapsulation. Overall, carbothermic reduction of copper slag with pyrolyzed waste-plastic char enhances iron recovery, cuts fuel consumption and CO2 emissions, and enables the co-valorization of two solid wastes. The kinetic parameters obtained provide a data basis for industrial furnace optimization, continuous feeding and subsequent magnetic-separation process design. Future work will evaluate char quality variability and pilot-scale feasibility to advance the industrial application of this low-carbon recovery route.

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李俊,鞠艳梅,孙沐. 铜渣-废塑料复合球团等温还原动力学研究[J].中国有色冶金,2025,54(6):162-168.

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  • 收稿日期:2025-04-20
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  • 在线发布日期: 2025-12-26
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