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2020, 06, 37-42
复杂铝电解质体系中锂盐和钾盐对氧化铝浓度的影响
基金项目(Foundation): 广西高等教育本科教学改革工程重点项目(2019JGZ148)
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发布时间: 2020-06-12
出版时间: 2020-06-12
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摘要:

我国铝电解企业所使用的原料氧化铝来源复杂,特别是富含锂、钾元素,造成锂盐、钾盐在铝电解质体系中大量富集,导致铝电解质成分复杂,对氧化铝的溶解过程造成极大影响。依据大量生产控制数据,解析了氟化锂、氟化钾在复杂铝电解质体系中对氧化铝的溶解性能的影响关系。结果表明,电解质体系中的锂盐、钾盐与冰晶石反应生成氟化锂、氟化钾。在低氟化锂浓度(<3.00%)时,氧化铝浓度随着氟化锂浓度的增加而降低;在高氟化锂浓度(>3.00%)时,氧化铝浓度随着氟化锂浓度的增加而增加。氧化铝的浓度随着氟化钾浓度的增加而增加;在复杂铝电解质体系中氟化锂的浓度控制在1.50%~2.50%可以保持铝电解过程的最优状态,铝电解质体系中尽量避免含氟化钾。

Abstract:

Due to complex sources of alumina in China,especially rich in Li and K elements,lithium salt and potassium salt enrich in aluminium electrolyte system and has a big impact on dissolution process of alumina.Based on a large number of production data,influences of LiF and KF on solubility of alumina in complex aluminium electrolyte system were analyzed.The results show that lithium salt and potassium salt in electrolyte system react with cryolite to form lithium fluoride and potassium fluoride.Concentration of alumina drops with increase of lithium fluoride concentration at low lithium fluoride concentration(<3.00%),and concentration of alumina rises with increase of lithium fluoride concentration at high lithium fluoride concentration(>3.00%).Concentration of alumina rises with increase of fluoride concentration in complex aluminium electrolyte system.Concentration of lithium fluoride in the range of1.50%-2.50%can keep the optimal state of aluminium electrolysis process,and potassium fluoride should be avoided as much as possible.

参考文献

[1]詹水清,杨建红,王贞涛,等.欠量与过量下料对铝电解氧化铝浓度分布影响的数值模拟[J].有色金属(冶炼部分),2017(12):15-20.ZHAN S Q,YANG J H,WANG Z T,et al.Numerical simulation of effect of underfeeding and overfeeding configurati0ns on alumina concentration distribution in aluminum reduction cells[J]. Nonferrous Metals(Extractive Metallurgy),2017(12):15-20.

[2]詹水清,李茂,周孑民,等.铝电解槽熔体内氧化铝浓度分布的数值模拟[J].中国有色金属学报,2014,24(10):2658-2667.ZHAN S Q,LI M,ZHOU J M,et al.Numerical simulation of alumina concentration distribution in melts of aluminum reduction cells[J].The Chinese Journal of Nonferrous Metals,2014,24(10):2658-2667.

[3]朱邦成.500kA大型预焙电解槽氧化铝浓度控制探索[J].低碳世界,2017,7(2):53-55.ZHU B C.Study on alumina concentration control of500kA large-scale prebaked cell[J].Low Carbon World,2017,7(2):53-55.

[4]李德祥,魏庆彬,李源,等.铝电解质添加氟化锂的研究[J].轻金属,1980(3):16-20.LI D X,WEI Q B,LI Y,et al.Study on adding lithium fluoride to aluminum electrolyte[J].Light Metal,1980(3):16-20.

[5]曹阿林,郭林,李靖靖.400kA系列铝电解槽区域氧化铝浓度时空分布研究[J].有色金属(冶炼部分),2018(6):23-27.CAO A L,GUO L,LI J J. Spatial-temporal distribution of alumina concentration in typical areas of400 kA aluminum reduction cell[J]. Nonferrous Metals(Extractive Metallurgy),2018(6):23-27.

[6]陈世月.富Li、K工业铝电解质的物理化学性质研究[D].长沙:中南大学,2013.CHEN S Y.Physicochemical properties of industrial aluminum electrolytes enriching Li and K[D].Changsha:Central South University,2013.

[7]曹大力,邱竹贤,王吉坤.锂盐在铝电解中的作用[J].材料导报,2006,20(8):90-93.CAO D L,QIU Z X,WANG J K.Effects of additive lithium salts on aluminum electrolysis[J].Materials Reports,2006,20(20):90-93.

[8]冯乃祥,张明杰,邱竹贤.碳酸锂添加剂对铝电解槽碳素阳极过电压的影响[J].轻金属,1989(7):26-30.FENG N X,ZHANG M J,QIU Z X.Effect of carbonated button additive on the overvoltage of carbon anode in aluminum reduction cell[J].Light Metal,1989(7):26-30.

[9]胡开华,邱竹贤.工业铝电解添加碳酸锂的经验和建议[J].轻金属,1999(2):38-41.HU K H,QIU Z X.Experience and suggestion of adding lithium carbonate in industrial aluminum electrolysis[J].Light Metal,1999(2):38-41.

[10]丁吉林,田永,杨叶伟.大型铝电解槽添加锂盐工业试验及应用[J].有色金属(冶炼部分),2006(2):27-29.DING J L,TIAN Y,YANG Y W.Industrial test&application of adding LiF3 in large-scale aluminum electrobath[J]. Nonferrous Metals(Extractive Metallurgy),2006(2):27-29.

基本信息:

中图分类号:TF821

引用信息:

[1]李春焕,曹阿林.复杂铝电解质体系中锂盐和钾盐对氧化铝浓度的影响[J].有色金属(冶炼部分),2020(06):37-42.

基金信息:

广西高等教育本科教学改革工程重点项目(2019JGZ148)

发布时间:

2020-06-12

出版时间:

2020-06-12

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