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钨铼合金电化学溶解及沉淀分离研究
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作者单位:

西北有色金属研究院

基金项目:

国家重点研发计划项目(2018YFC1901704)


Study on electrochemical dissolution and precipitation separation of W-Re alloy
Author:
Affiliation:

1.Northwest Institute for Nonferrous Metal Research,Xi’an 710016;2.China

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    摘要:

    针对钨铼合金废料,采用电化学溶解法使钨、钼、铼在氢氧化钠碱性溶液中完全溶出,再采用氯化钙沉钨钼和氯化钾沉铼进行了电解溶液的选择性沉淀分离。结果表明:(1)钨铼合金废料电化学溶解的适宜工艺参数为:槽电压2.5V,NaOH浓度100g/L,电解温度30-40℃,极距20-30mm,钨铼离子总浓度控制在30-35g/L,在此条件下,钨、钼、铼溶出率均大于99%,电流效率高达99%以上,且丝状废料较块状废料更好电溶;(2)钨铼电解溶液选择性化学沉淀分离的适宜工艺参数为:反应温度80℃,CaCl2用量为3倍理论用量,溶液OH-浓度9.5g/L,溶液W离子浓度为23.18g/L,反应时间2h,在此条件下,钨、钼沉淀率分别为99.86%和99.55%;(3)经过上述2道工序后,钨、钼回收率分别达到98.86%和98.55%,所得CaWO4/CaMoO4混合物形貌为球形颗粒,且制得KReO4白色晶体。

    Abstract:

    In view of the waste of W-Re alloy, the electrochemical dissolution method was used to make W, Mo and Rre completely dissolved in the alkaline solution of sodium hydroxide, and then the selective precipitation separation of the electrolytic solution were performed.by using calcium chloride to precipitate W-Mo and potassium chloride to precipitate Re. The results show that: (1)The suitable process parameters for electrochemical dissolution of W-Re alloy waste are: cell voltage 2.5V, NaOH concentration 100g/L, electrolysis temperature 30-40℃, electrode distance 20-30mm, and the total W-Re ion concentration is controlled at 30-35g/L. Under these conditions, the dissolution rate of W, Mo and Re are all more than 99%, the current efficiency is over 99%, and the wire waste is better than the block waste to be eletrochemically dissolved. (2)The optimum technological parameters for the selective chemical precipitation separation of W-Re electrolytic solution are: reaction temperature 80℃, CaCl2 dosage 3 times of theoretical dosage, OH- concentration 9.5g/L, W ion concentration 23.18g/L, reaction time 2h. Under these conditions, the precipitation rates of W and Mo are 99.86% and 99.55%, respectively. (3)After the above two processes, the recovery rates of W and Mo are 98.86% and 98.55%, respectively. The morphology of CaWO4/CaMoO4 mixture is spherical, and KReO4 white crystals are obtained.

    参考文献
    [1] Wei Shizhong (魏世忠), Han Mingru (韩明儒), Xu Liujie (徐流杰). Preparation and Properties of Rhenium Alloy (铼合金的制备与性能)[M]. Beijing: Science Press, 2015: 83
    [2] Wang Feng(王峰), Zheng Xin(郑欣), Li Laiping(李来平) et al. Chian Tungsten Industry(中国钨业) [J] , 2014, 29(2): 37
    [3] Cheng Tingyu(程挺宇), Xiong Ning(熊宁), Peng Kaiyuan(彭楷元) et al. Rare Metal Materials and Engineering (稀有金属材料与工程) [J], 2009, 38(2): 373
    [4] Yin Xieshi (印协世). Tungsten-rhenium Alloy and Tungsten-rhenium Thermocouple (钨铼合金和钨铼热电偶)[M]. Beijing: Metallurgical Industry Press, 1992: 7
    [5] Zhou Lingzhi(周令治), Chen Shaochun(陈少纯). Extraction Metallurgy of Scattered Metals (稀散金属提取冶金)[M]. Beijing: Metallurgical Industry Press, 2008: 357
    [6] Feng Ruishu(冯瑞姝), Xu Shengming(徐盛明). Hydrometallurgy of China(湿法冶金) [J], 2012, 31(6): 338
    [7] Heshmatpou B, Mcdonald R E. Journal of the Less-common Metals[J] , 1982, 86(1): 121
    [8] Anderson C D, Taylor P R, Anderson C G. Minerals Metallurgical Processing[J], 2013, 30(1): 59
    [9] Zhang Jian(张健). Rare Metal Materials and Engineering (稀有金属材料与工程) [J], 1997, 26(4): 45
    [10] Wu Jianhui(邬建辉), Su Tao(苏涛), Liu Gang(刘刚) et al. Chinese Journal of Rare Metals (稀有金属) [J] , 2016, 40(7): 737
    [11] Chernyshova O V, Drobot D V. Theoretical Foundations of Chemical Engineering [J], 2018, 52(4):711
    [12] Levin A M, Levchuk O M. Russian Metallurgy (Metally)[J], 2017, (1): 47
    [13] Kuznetsova O G , Levin A M , Sevostyanov M A et al. Journal of Physics Conference Series [C], UK: IOP Publishing Ltd, 2018: 1134.
    [14] Yin Weihong (殷为宏), Tang Huiping (汤惠萍). Downstream Processing Technology for Refractory Metals(难熔金属材料深加工技术)[M]. Beijing: Chemical Industry Press, 2015: 168
    [15] Wu Weichang (吴维昌), Feng Hongqing (冯洪清), Wu Kaizhi (吴开治). Standard Electrode Potential Data Book (标准电极电位数据手册)[M]. Beijing: Science Press, 1991: 145
    [16] Guo Huajun(郭华军), Cao Yanbing(曹雁冰), Li Xinhai(李新海) et al. Mining and Metallugical Engineering(矿冶工程) [J], 2005, 25(4): 42
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陈昆昆,操齐高,孟晗琪,张卜升,赵盘巢,党蕊.钨铼合金电化学溶解及沉淀分离研究[J].稀有金属材料与工程,2021,50(1):279~285.[Chen Kunkun, Cao Qigao, Meng Hanqi, Zhang Bosheng, Zhao Panchao, Dang Rui. Study on electrochemical dissolution and precipitation separation of W-Re alloy[J]. Rare Metal Materials and Engineering,2021,50(1):279~285.]
DOI:10.12442/j. issn.1002-185X.20200032

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  • 收稿日期:2020-01-14
  • 最后修改日期:2020-04-17
  • 录用日期:2020-04-26
  • 在线发布日期: 2021-02-05