铟资源供给与消费格局分析

李芳琴, 黄莉, 李杰, 陈子瞻. 2023. 铟资源供给与消费格局分析[J]. 地球学报, 44(2): 297-304. doi: 10.3975/cagsb.2022.112401
引用本文: 李芳琴, 黄莉, 李杰, 陈子瞻. 2023. 铟资源供给与消费格局分析[J]. 地球学报, 44(2): 297-304. doi: 10.3975/cagsb.2022.112401
LI Fang-qin, HUANG Li, LI Jie, CHEN Zi-zhan. 2023. Analysis of Indium Resource Supply and Consumption Pattern. Acta Geoscientica Sinica, 44(2): 297-304. doi: 10.3975/cagsb.2022.112401
Citation: LI Fang-qin, HUANG Li, LI Jie, CHEN Zi-zhan. 2023. Analysis of Indium Resource Supply and Consumption Pattern. Acta Geoscientica Sinica, 44(2): 297-304. doi: 10.3975/cagsb.2022.112401

铟资源供给与消费格局分析

  • 基金项目:

    本文由国家自然科学基金重大研究计划集成项目“中国关键金属矿产清单厘定与风险评估”(编号: 92162321)、国家自然科学基金基础科学中心项目“数字经济时代的资源环境管理理论与应用”(编号: 72088101)、国家自然科学基金重大项目“新时代战略性关键矿产资源安全与管理”(编号: 71991480)、国家社会科学基金重大项目“自然资源高效利用与经济安全和高质量发展机制研究”(编号: 21&

    ZD104)和中国地质调查项目“全球矿产资源战略研究”(编号: DD20221795)联合资助

详细信息
    作者简介: 李芳琴, 女, 1982 年生。博士, 副研究员。主要从事资源经济研究。E-mail: lifangqin.1@163.com
  • 中图分类号: F426

Analysis of Indium Resource Supply and Consumption Pattern

  • 铟资源广泛应用于ITO 靶材、半导体化合物、焊料及合金等材料的生产制造, 是21 世纪重要的战略金属。文章基于铟资源全产业链视角, 通过分析2000 年以来全球铟资源供给与消费格局, 并展望未来供需趋势, 得出的结论主要有: (1)全球再生铟供给已超过原生铟供给; 原生铟供给高度集中在中国、韩国、日本、加拿大四国; 再生铟供给集中于日本、韩国。(2)全球铟资源消费量大幅增长, 二十年来, 翻了两番; 日本与韩国是全球铟资源的消费主体; ITO 靶材是主要消费领域。(3)2007 年以来, 全球铟资源总供给量大于总消费量600 t, 预判这部分差量进入了国家储备。(4)未来中国增加铟资源供给的途经可以借鉴日本与韩国的经验, 从社会存量中再利用铟资源, 提高铟全产业链利用效率。
  • 加载中
  • 安泰科. 2022. 2021 年有色金属市场发展报告[R]. 北京: 安泰科咨询研究部.

    杜轶伦, 张福良, 胡永达, 雷晓力, 易继宁, 陶银龙, 崔迪. 2014. 铟矿资源开发形势分析及管理对策建议[J]. 中国矿业, 23(2): 11-15.

    李芳琴, 李建武. 2018. 金属矿产资源经济重要性评估研究[J].中国矿业, 27(12): 6-13.

    廖亚琴, 李愿杰, 黄添懋. 2014. 透明导电薄膜现状与发展趋 势[J]. 东方电气评论, 28(1): 13-18.

    刘劲松, 高丽丽. 2021. 日本铟资源供需格局及其矿业政策分 析[J]. 矿业研究与开发, 41(5): 188-194.

    徐净, 李晓峰. 2018. 铟矿床时空分布、成矿背景及其成矿过 程[J]. 岩石学报, 34(12): 3611-3626.

    周艳晶. 2021. 中国铟资源动态物质流研究[D]. 武汉: 中国地质大学.

    Antaike. 2022. Non ferrous metal market development report in 2021[R]. Beijing: Antaike Consulting and Research Department.

    BGS. 2016. Risk list 2015: An update to the supply risk index for elements or element groups that are of economic value[R]. UK: BGS Minerals UK Centre for Sustainable Mineral Development.

    BOUNDY T, BOYTON M, TAYLOR P. 2017. Attrition scrubbing for recovery of indium from waste liquid crystal display glass via selective comminution[J]. Journal of Cleaner Production, 154: 436-444.

    CHINNAM R K, UJACZKI É, O’DONOGHUE L. 2020. Leaching indium from discarded LCD glass: A rapid and environmentally friendly process[J]. Journal of Cleaner Production, 277: 122868.

    CHOI C H, CAO Jin-jian, ZHAO Fu. 2016. System dynamics modeling of indium material flows under wide deployment of clean energy technologies[J]. Resources, Conservation and Recycling, 114: 59-71.

    CHOI C H, KIM S P, LEE S, ZHAO Fu. 2020. Game theoretic production decisions of by-product materials critical for clean energy technologies-indium as a case study[J]. Energy, 203: 117768.

    CIACCI L, WERNER T T, VASSURA I, PASSARINI F. 2019. Backlighting the European indium recycling potentials[J]. Journal of Industrial Ecology, 23(2): 426-437.

    DU Yi-lun, ZHANG Fu-liang, HU Yong-da, LEI Xiao-li, YI Ji-ning, TAO Yin-long, CUI Di. 2014. Analysis on the development of indium and recommended management strategies[J]. China Mining Magazine, 23(2): 11-15(in Chinese with English abstract).

    ELSHKAKI A, GRAEDEL T E. 2015. Solar cell metals and their hosts: A tale of oversupply and undersupply[J]. Applied Energy, 158(C): 167-177.

    GRAEDEL T E, HARPER E M, NASSAR N T, NUSS P, RECK B K. 2015. Criticality of metals and metalloids[J]. Proceedings of the National Academy of Sciences, 112(14): 4257-4262.

    GRANDELL L, HÖÖK M. 2015. Assessing rare metal availability challenges for solar energy technologies[J]. Sustainability, 7(9): 11818-11837.

    HASEGAWA H, RAHMAN I M M, EGAWA Y, SAWAI H, BEGUM Z A, MAKI T, MIZUTANI S. 2013. Chelant-induced reclamation of indium from the spent liquid crystal display panels with the aid of microwave irradiation[J]. Journal of Hazardous Materials, 254-255: 10-17.

    HATAYAMA H, TAHARA K. 2015. Criticality assessment of metals for Japan’s resource strategy[J]. Materials Transactions, 56(2): 229-235.

    HE Yun-xia, MA En, XU Zhen-ming. 2014. Recycling indium from waste liquid crystal display panel by vacuum carbon-reduction[J]. Journal of Hazardous Materials, 268: 185-190.

    JOGMEC.鉱物資源マテリアルフローインジウム(In)[EB/OL] [2019-03-26]. https://mric.jogmec.go.jp/.

    KAYAM Y.2017. Assessment of the methodology for establishing the EU list of critical raw materials: Background report[M]. JRC Technical Reports.

    LAHTELA V, VIROLAINEN S, UWAOMA A, KALLIOINEN M, KÄRKI T, SAINIO T. 2019. Novel mechanical pre-treatment methods for effective indium recovery from end-of-life liquid-crystal display panels[J]. Journal of Cleaner Production, 230: 580-591.

    LI Fang-qin, WANG Peng, CHEN Wei, CHEN Wei-qiang, WEN Bo-jie, DAI Tao. 2022. Exploring recycling potential of rare, scarce, and scattered metals: Present status and future directions[J]. Sustainable Production and Consumption, 30: 988-1000.

    LI Fang-qin, LI Jian-wu. 2018. Study on economic importance assessment of metal mineral resources[J]. China Mining Magazine, 27(12): 6-13(in Chinese with English abstract).

    LIAO Ya-qin, LI Yuan-jie, HUANG Tian-mao. 2014. Status and development endency of transparent conductive films[J]. Dongfang Electric Review, 28(1): 13-18(in Chinese with English abstract).

    LICHT C, PEIRÓ L T, VILLALBA G. 2015. Global substance flow analysis of gallium, germanium, and indium: Quantification of extraction, uses, and dissipative losses within their anthropogenic cycles[J]. Journal of Industrial Ecology, 19 (5): 890-903.

    LIN Shao-hua, MAO Jian-su, CHEN Wei-qiang, SHI Lei. 2019. Indium in mainland China: Insights into use, trade, and efficiency from the substance flow analysis[J]. Resources, Conservation & Recycling, 149: 312-321.

    LIU Jin-song, GAO Li-li. 2021. Analysis on supply and demand situation of indium resources and mining policy in Japan[J]. Mining Research and Development, 41(5): 188-194(in Chinese with English abstract).

    MURAKAMI H, ISHIHARA S. 2013. Trace elements of indium-bearing sphalerite from tin-polymetallic deposits in Bolivia, China and Japan: A femto-second LA-ICPMS study[J]. Ore Geology Reviews, 53: 223-243.

    NASSAR N T, FORTIER S M. 2021. Methodology and technical input for the 2021 review and revision of the US Critical Minerals List[R]. Reston: US Geological Survey.

    NASSAR N T, GRAEDEL T E, HARPER E M. 2015. By-product metals are technologically essential but have problematic supply[J]. Science Advances, 1(3): e1400180.

    RUDNICK R L, GAO S. 2014. Composition of the continental crust[C]//TURELIAN H D, HOLLAND K K. Treatise on geochemistry(2nd Edition). Oxford: Elsevier: 1-51.

    STAMP A, WÄGER P A, HELLWEG S. 2014. Linking energy scenarios with metal demand modeling-The case of indium in CIGS solar cells[J]. Resources, Conservation and Recycling, 93: 156-167.

    THIÉBAUD E, HILTY L M, SCHLUEP M, BÖNI H W, FAULSTICH M. 2018. Where do our resources go? indium, neodymium, and gold flows connected to the use of electronic equipment in Switzerland[J]. Sustainability, 10(8): 1-17.

    USGS. 2022. Minerals commodity summaries: Indium[EB/OL]. [2022-1-31]. https://pubs.usgs.gov/periodicals/mcs2022/ mcs2022-indium.pdf.

    WANG Shuai, HE Ya-qun, FENG Yi, ZHANG Feng-bin, ZHANG Tao. 2020. Indium tin oxide recycling from waste colour filter glass via thermal decomposition[J]. Journal of Hazardous Materials, 392: 122503.

    WERNER T T, MUDD G M, JOWITT S M. 2017. The world’s by-product and critical metal resources part III: A global assessment of indium[J]. Ore Geology Reviews, 86: 939-956.

    XU Jing, LI Xiao-feng. 2018. Spatial and temporal distributions, metallogenic backgrounds and processes of indium deposits[J]. Acta Petrologica Sinica, 34(12): 3611-3626(in Chinese with English abstract).

    YANG Jia-xu, RETEGAN T, EKBERG C. 2013. Indium recovery from discarded LCD panel glass by solvent extraction[J]. Hydrometallurgy, 137: 68-77.

    ZHANG Lin-gen, WU Bi, CHEN Ya, XU Zhen-ming. 2017. Energy and valuable resource recovery from waste liquid crystal display panels by an environment-friendly technological process: Pyrolysis of liquid crystals and preparation of indium product[J]. Journal of Cleaner Production, 162: 141-152.

    ZHOU Yan-jing. 2021. Dynamic material flow analysis of indium in China[D]. Wuhan: China University of Geosciences(in Chinese with English abstract).

  • 加载中
计量
  • 文章访问数:  67
  • PDF下载数:  5
  • 施引文献:  0
出版历程
收稿日期:  2022-10-08
修回日期:  2022-11-17

目录