Professional Committee of Rock and Mineral Testing Technology of the Geological Society of China, National Geological Experiment and Testing CenterHost
2021 Vol. 40, No. 1
Article Contents

TIAN Zong-ping, PENG Jun, WANG Gan-zhen, YI Xiao-ming, CAO Jian, QIN Yi. Preparation of Standard Materials for Composition Analysis of Stone Coal Vanadium Ore[J]. Rock and Mineral Analysis, 2021, 40(1): 111-120. doi: 10.15898/j.cnki.11-2131/td.202001070008
Citation: TIAN Zong-ping, PENG Jun, WANG Gan-zhen, YI Xiao-ming, CAO Jian, QIN Yi. Preparation of Standard Materials for Composition Analysis of Stone Coal Vanadium Ore[J]. Rock and Mineral Analysis, 2021, 40(1): 111-120. doi: 10.15898/j.cnki.11-2131/td.202001070008

Preparation of Standard Materials for Composition Analysis of Stone Coal Vanadium Ore

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  • BACKGROUND

    The development and rational utilization of stone coal vanadium ore resources require accurate analysis of its components and quality control. At present, there is no standard material for composition analysis of vanadium ore in the world, and the existing standard material cannot meet the needs of exploration, development and research of vanadium ore in China, either in the content of vanadium pentoxide or in the certified values of other elements.

    OBJECTIVES

    To prepare standard materials for composition analysis of stone coal vanadium ore.

    METHODS

    Ore samples, roof and floor rocks and artificially stripped high-grade samples were collected from four large stone coal vanadium districts, including Xiaoyuanchong vanadium mine in Chongyang County, Hubei Province, the Niuguuping in Zhijiang County, Hunan Province, the Yantouzhai in Guzhang County, Hunan Province, and the Heichong in Fenghuang County, Hunan Province. The samples were subjected to jaw-type primary crushing, roller crushing, coarse-grain sieving and mixing, ore blending and mixing, disc fine grinding, fine-grain sieving, and inactivation. After passing the initial inspection, samples were bottled and numbered.

    RESULTS

    For the uniformity test of randomly selected 4×35 bottles, the measured values of F were all less than F0.05(34, 70)=1.60, and the relative standard deviation was between 0.31% and 7.48%, indicating good uniformity of the samples. Long-term and short-term stability tests were carried out on randomly selected samples, and no statistically significant difference was found, indicating good stability of the samples. Nine laboratories participated in the collaborative certified value research, which included 16 components such as V2O5, C and SiO2. Mass fractions of V2O5 in the four stone coal vanadium ore standard materials were 0.63%, 0.86%, 1.55%, 3.99%, covering cut-off grade of 0.50%, industrial grade of 0.70%, and rich-ore grade of ≥ 1%. Carbon contents of four standard materials were 2.40%, 3.46%, 5.60% and 7.27%, respectively.

    CONCLUSIONS

    The successful development of 4 standard substances (GBW07875, GBW07876, GBW07877, GBW07878) in this batch can provide reference for scientific utilization and research of stone coal vanadium ore.

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  • [1] 戴子林, 张恩普. 从石煤钒矿中浸钒技术的研究现状[J]. 矿冶工程, 2015, 35(6): 85-88.

    Google Scholar

    Dai Z L, Zhang E P. Technical status of leaching vanadium from stone coal vanadium ore[J]. Mining and Metallurgical Engineering, 2015, 35(6): 85-88.

    Google Scholar

    [2] 张卫国, 侯恩科, 杨建业, 等. 石煤中钒-钼-硒等伴生元素研究[J]. 稀有金属, 2019, 43(10): 1092-1101.

    Google Scholar

    Zhang W G, Hou E K, Yang J Y, et al. Study on vanadium-molybdenum-selenium and other associated elements in stone coal[J]. Chinese Journal of Rare Metals, 2019, 43(10): 1092-1101.

    Google Scholar

    [3] 崔文婧. 我国钒矿资源开发利用现状及建议[J]. 合作经济与科技, 2019(6): 54-56.

    Google Scholar

    Cui W J. Development and utilization status and suggestions of vanadium ore resources in China[J]. Cooperation of Economy and Technology, 2019(6): 54-56.

    Google Scholar

    [4] 吴先文, 江振寅, 吴志雄. 鄂东南石煤钒矿地质特征及找矿标志[J]. 中国煤炭地质, 2013, 25(4): 10-13.

    Google Scholar

    Wu X W, Jiang Z Y, Wu Z X. Geological characteristics and prospecting indicators of stone-like coal vanadium ore in southeastern Hubei[J]. Coal Geology of China, 2013, 25(4): 10-13.

    Google Scholar

    [5] 陈明辉, 胡祥昭, 卢兵, 等. 湘西北岩头寨钒矿成矿地质特征及成因[J]. 矿产勘查, 2014(5): 751-761.

    Google Scholar

    Chen M H, Hu X Z, Lu B, et al. Metallogenic characteristics and genesis of the Yantouzhai vanadinum deposit in the northwesten Hunan[J]. Mineral Exploration, 2014(5): 751-761.

    Google Scholar

    [6] 邓旭升, 李明琴, 张梅江. 贵州三穗八弓钒矿床岩、矿石特征及其成因初探[J]. 贵州大学学报(自然科学版), 2014, 31(3): 41-44.

    Google Scholar

    Deng X S, Li M Q, Zhang M J. Characteristics of rock and ore and preliminary analysis of genesis in Bagong V deposit in Sansui of Guizhou Province[J]. Journal of Guizhou University (Natural Sciences), 2014, 31(3): 41-44.

    Google Scholar

    [7] 游先军, 田宗平, 李力, 等. 从湘西黑色页岩中提取钒的工艺研究[J]. 湿法冶金, 2008, 27(1): 31-34.

    Google Scholar

    You X J, Tian Z P, Li L, et al. Process research on extracting of vanadium from black shales[J]. Hydrometallurgy of China, 2008, 27(1): 31-34.

    Google Scholar

    [8] 邢学永, 万洪强, 宁顺明, 等. 某石煤钒矿的选矿与提钒试验研究[J]. 有色金属(选矿部分), 2016(3): 43-47.

    Google Scholar

    Xing X Y, Wan H Q, Ning S M, et al. Experimental research on mineral processing and vanadium extraction from a stone coal vanadium ore[J]. Nonferrous Metals (Mineral Processing Section), 2016(3): 43-47.

    Google Scholar

    [9] 田宗平, 曹健, 秦毅. 石煤钒矿硫酸浸出制备五氧化二钒的试验研究[J]. 无机盐工业, 2014, 10(6): 31-33.

    Google Scholar

    Tian Z P, Cao J, Qin Y. Experimental study on preparation of vanadium pentoxide from stone coal vanadium ore by sulfuric acid leaching[J]. Inorganic Chemicals Industry, 2014, 10(6): 31-33.

    Google Scholar

    [10] 康健, 林璠, 刘爽, 等. 湖北省某石煤钒矿的提钒工艺[J]. 矿产综合利用, 2015(2): 29-32.

    Google Scholar

    Kang J, Lin P, Liu S, et al. Vanadium extraction process of a stone coal vanadium ore in Hubei Province[J]. Multipurpose Utilization of Mineral Resources, 2015(2): 29-32.

    Google Scholar

    [11] 刘佳鹏, 孙伟, 王丽, 等. 陕西某石煤钒矿的新型选矿工艺研究[J]. 有色金属(选矿部分), 2015(2): 58-63.

    Google Scholar

    Liu J P, Sun W, Wang L, et al. Study on a new beneficiation technology of a vanadium-bearing stone coal ore in Shaanxi[J]. Nonferrous Metals (Mineral Processing Section), 2015(2): 58-63.

    Google Scholar

    [12] 刘大学, 厉彦江, 常耀超, 等. 石煤钒矿直接硫酸浸出工艺扩大试验[J]. 矿冶, 2013, 22(4): 60-66.

    Google Scholar

    Liu D X, Li Y J, Chang Y C, et al. Pilt test on extraction action of vanadium from stone coal by direct sulfuricacid leaching[J]. Mining & Metallurgy, 2013, 22(4): 60-66.

    Google Scholar

    [13] 孙伟, 辜小川, 刘润清, 等. 某炭质石煤钒矿中钒的赋存状态及其浮选研究[J]. 矿冶工程, 2013(6): 34-37.

    Google Scholar

    Sun W, Gu X C, Liu R Q, et al. Occurrence state of vanadium minerals in carbonaceous stone coal and corresponding beneficiation technology[J]. Mining and Metallurgical Engineering, 2013(6): 34-37.

    Google Scholar

    [14] 尹飞, 邹维, 揭晓武, 等. 高硅质石煤钒矿浸出机理研究[J]. 有色金属(冶炼部分), 2016(9): 21-23.

    Google Scholar

    Yin F, Zou W, Jie X W, et al. Study on vanadium leaching mechanism from high siliceous stone coal vanadium ore[J]. Nonferrous Metals (Extractive Metallurgy), 2016(9): 21-23.

    Google Scholar

    [15] 胡艺博, 叶国华, 左琪, 等. 石煤钒矿酸浸液提钒萃取剂的研究进展与前景[J]. 矿产综合利用, 2020(1): 10-15.

    Google Scholar

    Hu Y B, Ye G H, Zuo Q, et al. Research progress and prospect of extractants for vanadium from acid leaching solution of stone coal vanadium ore[J]. Multipurpose Utilization of Mineral Resources, 2020(1): 10-15.

    Google Scholar

    [16] 谢元林. 钒在钢中的合金化作用及应用[J]. 特钢技术, 2015(1): 1-5.

    Google Scholar

    Xie Y L. Effect of vanadium on alloying and its applications[J]. Special Steel Technology, 2015(1): 1-5.

    Google Scholar

    [17] 陈宇宁, 张守海, 蹇锡高. 钒电池用两性离子交换膜的研究进展[J]. 膜科学与技术, 2020, 40(3): 151-159.

    Google Scholar

    Chen Y N, Zhang S H, Jian X G. Recent progress on amphoteric in exchange membranes for vanadium redox flow battery applications[J]. Membrane Science and Technology, 2020, 40(3): 151-159.

    Google Scholar

    [18] 洪飞, 刘耀华, 吕振生, 等. 钛铁矿化学成分标准物质研制[J]. 岩矿测试, 2014, 33(1): 67-73.

    Google Scholar

    Hong F, Liu Y H, Lv Z S, et al. Certified reference materials preparation of ilmenite chemical composition[J]. Rock and Mineral Analysis, 2014, 33(1): 67-73.

    Google Scholar

    [19] 刘妹, 顾铁新, 潘含江, 等. 泛滥平原沉积物标准物质研制[J]. 岩矿测试, 2018, 37(5): 558-571.

    Google Scholar

    Liu M, Gu T X, Pan H J, et al. Preparation of seven certified reference materials of floodplain sediments[J]. Rock and Mineral Analysis, 2018, 37(5): 558-571.

    Google Scholar

    [20] 赵晓亮, 李志伟, 王烨, 等. 铌钽精矿标准物质研制[J]. 岩矿测试, 2018, 37(6): 90-97.

    Google Scholar

    Zhao X L, Li Z W, Wang Y, et al. Preparation and certification of niobium-tantalum concentrate reference materials[J]. Rock and Mineral Analysis, 2018, 37(6): 90-97.

    Google Scholar

    [21] 曾美云, 刘金, 邵鑫, 等. 磷矿石化学成分分析标准物质研制[J]. 岩矿测试, 2017, 36(6): 633-640.

    Google Scholar

    Zeng M Y, Liu J, Shao X, et al. Preparation of phosphate ore reference materials for chemical composition analysis[J]. Rock and Mineral Analysis, 2017, 36(6): 633-640.

    Google Scholar

    [22] 全国标准物质管理委员会. 标准物质目录[M]. 北京: 中国质检出版社, 中国标准出版社, 2017.

    Google Scholar

    National Administrative Committee for Certified Reference Materials. List of standard substances[M]. Beijing: Quality Inspection of China Press, Standards Press of China, 2017.

    Google Scholar

    [23] 田宗平, 易晓明, 曹健, 等. 黑色岩系(石煤)钒矿矿物特征研究与应用[J]. 中国冶金, 2016, 26(2): 13-17.

    Google Scholar

    Tian Z P, Yi X M, Cao J, et al. Black rock series (stone coal) vanadium ore mineral characteristics research and application[J]. China Metallurgy, 2016, 26(2): 13-17.

    Google Scholar

    [24] 田宗平, 易晓明, 秦毅, 等. 黑色岩系(石煤)钒矿标准物质候选物的采集与制备[J]. 湿法冶金, 2016, 35(3): 255-259.

    Google Scholar

    Tian Z P, Yi X M, Qin Y, et al. Collection and preparation of black rock (stone coal) vanadium ore standard material candidate[J]. Hydrometallurgy of China, 2016, 35(3): 255-259.

    Google Scholar

    [25] 王毅民, 高玉淑, 王晓红, 等. 中国海大陆架沉积物超细标准物质系列研制[J]. 分析化学, 2009, 37(11): 1700-1705.

    Google Scholar

    Wang Y M, Gao Y S, Wang X H, et al. Preparation of five China sea and continental shelf sediment reference materials with ultra fine particle size[J]. Chinese Journal of Analytical Chemistry, 2009, 37(11): 1700-1705.

    Google Scholar

    [26] 杨理勤. 常量金标准物质标准值的不确定度评定方法[J]. 黄金, 2015, 36(9): 80-82.

    Google Scholar

    Yang L Q. Discussion about the assessment method of the uncertainty degree of certified values from ore gold reference materials[J]. Gold, 2015, 36(9): 80-82.

    Google Scholar

    [27] 田宗平, 李力, 曹健. 石煤钒矿中五氧化二钒的测定与基准校验[J]. 中国材料科技与设备, 2014, 10(6): 31-33.

    Google Scholar

    Tian Z P, Li L, Cao J. Stone coal vanadium ore vanadium pentoxide capacity analysis the benchmark preparation and validation[J]. Chinese Materials Science Technology & Equipment, 2014, 10(6): 31-33.

    Google Scholar

    [28] 田宗平, 曹健, 李力, 等. 石煤中五氧化二钒的磷钨钒酸光度法测定研究与应用[J]. 湖南有色金属, 2016, 32(5): 69-73.

    Google Scholar

    Tian Z P, Cao J, Li L, et al. Among the stone coal vanadium pentoxide spectrophotometry analysis determination of research and application[J]. Hunan Nonferrous Metals, 2016, 32(5): 69-73.

    Google Scholar

    [29] 罗琦, 曾少乾, 田宗平. 石煤钒矿中五氧化二钒容量法测定及量值溯源研究[J]. 中国锰业, 2017, 35(4): 112-116.

    Google Scholar

    Luo Q, Zeng S Q, Tian Z P. Tracing research of capacity method determination and its volume value in vanadium pentoxide of stone coal vanadium mine[J]. China's Manganese Industry, 2017, 35(4): 112-116.

    Google Scholar

    [30] 刘立平, 赵锦华, 张佑云, 等. 石煤钒矿中五氧化二钒测定方法的确认与应用[J]. 湿法冶金, 2018, 37(5): 425-430.

    Google Scholar

    Liu L P, Zhao J H, Zhang Y Y, et al. Confirmation and application of determination method of vanadium pentoxide in stone coal vanadium mine[J]. Hydrometallurgy of China, 2018, 37(5): 425-430.

    Google Scholar

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