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从抛光废料中回收稀土

张宇

张宇. 从抛光废料中回收稀土[J]. 矿产综合利用, 2023, 44(5): 32-35, 46. doi: 10.3969/j.issn.1000-6532.2023.05.006
引用本文: 张宇. 从抛光废料中回收稀土[J]. 矿产综合利用, 2023, 44(5): 32-35, 46. doi: 10.3969/j.issn.1000-6532.2023.05.006
Zhang Yu. Recovery of Rare Earths from Polishing Waste[J]. Multipurpose Utilization of Mineral Resources, 2023, 44(5): 32-35, 46. doi: 10.3969/j.issn.1000-6532.2023.05.006
Citation: Zhang Yu. Recovery of Rare Earths from Polishing Waste[J]. Multipurpose Utilization of Mineral Resources, 2023, 44(5): 32-35, 46. doi: 10.3969/j.issn.1000-6532.2023.05.006

从抛光废料中回收稀土

doi: 10.3969/j.issn.1000-6532.2023.05.006
详细信息
    作者简介:

    张宇(1981-),男,硕士,主要从事含稀土废料再生的研究与生产

  • 中图分类号: TD985:TF803.2

Recovery of Rare Earths from Polishing Waste

  • 摘要: 这是一篇冶金工程领域的论文。以稀土抛光粉废料为原料,通过正交实验设计,首先进行废料与硫酸铵和硫酸氢铵混合物的焙烧实验,使稀土氧化物转化为硫酸盐。实验考查3个因素,每个因素取3个水平,选用正交表L9(34),安排了9个实验,统计分析实验结果:焙烧温度取480 ℃,焙烧时间取3 h,质量比取1.8∶1。然后在酸浸液中加入0.2%的硫脲作还原剂,研究用稀硫酸从焙烧固相中浸出稀土的工艺条件。实验考查4个因素,每个因素取4个水平,选用正交表L16(45),安排了16个实验,统计分析实验结果:酸浸温度取90 ℃,硫酸浓度取0.5 mol/L,浸出时间取4 h,稀硫酸与焙烧固相的液固比(质量)取4:1,稀土的浸出率可达97.8%~98.0%。

     

  • 图  1  工艺流程

    Figure  1.  Process flow chart

    表  1  抛光粉废料主要成分/%

    Table  1.   Main components of polishing powder waste

    CeO2La2O3Pr6O11Nd2O3Y2O3CaOFe2O3Al2O3SiO2
    61.8832.440.47<0.1<0.10.050.080.034.55
    下载: 导出CSV

    表  2  焙烧实验的影响因素和水平

    Table  2.   Influencing factors and levels of roasting test

    因素水平123
    A: 焙烧温度/℃300390480
    B: 焙烧时间/h123
    C: 质量比1.3∶11.8∶12.3∶1
    下载: 导出CSV

    表  3  焙烧正交实验

    Table  3.   Roasting orthogonal test

    实验序号列号/因素浸出率
    1234Y/%
    ABC
    1111114.2
    2122241.9
    3133362.4
    4212358.7
    5223180.1
    6231280.5
    7313273.6
    8321374.0
    9332193.6
    k139.548.856.262.6
    k273.165.364.765.3
    k380.478.872.065.0
    r色度40.930.015.82.7
    下载: 导出CSV

    表  4  焙烧方差分析

    Table  4.   Variance analysis of roasting test

    方差来源平方和自由度均方F 值显著性
    A2855.121427.5217.3**
    B1354.52677.3103.1**
    C375.22187.628.6
    误差13.126.6
    总和4597.98F0.05(2,2)=19.00
    下载: 导出CSV

    表  5  稀土浸出实验的影响因素和水平

    Table  5.   Influence factors and levels of rare earth leaching test

    因素水平1234
    A:反应温度/ ℃30507090
    B:硫酸浓度/(mol/L)0.20.51.02
    C:浸出时间/h1234
    D:液固比(质量比)2∶13∶14∶15∶1
    下载: 导出CSV

    表  6  浸出正交实验

    Table  6.   Orthogonal test of leaching

    实验序号列号/因素稀土浸出率
    Y/%
    12345
    ABCD
    11111157.7
    21222276.9
    31333378.7
    41444480.2
    52123481.8
    62214378.7
    72341279.7
    82432175.7
    93134292.6
    103243197.6
    113312474.7
    123421368.6
    134142393.2
    144231489.3
    154324187.8
    164413274.8
    k173.481.371.573.879.7
    k279.085.678.880.181.0
    k383.480.284.183.279.8
    k486.374.887.784.881.5
    r12.910.816.211.01.8
    下载: 导出CSV

    表  7  浸出方差分析

    Table  7.   Variance analysis of leaching test

    方差
    来源
    平方和自由度均方F 值显著性
    A378.83126.339.8*
    B236.9379.024.9*
    C594.83198.362.5*
    D283.3394.429.8*
    误差9.533.2
    总和1503.315F0.05(3,3)=9.28
    下载: 导出CSV
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  • 收稿日期:  2022-04-02

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