Citation: | ZHANG Rui-yang, MAO Yu-yu, LI Zheng-yao, LI Dong, ZHANG Xue-jin. Study of the occurrence law of iron in different types of sorting tailings of Anshan-type low-grade hematite[J]. Chinese Journal of Engineering, 2021, 43(10): 1304-1311. doi: 10.13374/j.issn2095-9389.2020.10.28.008 |
[1] |
鞠會霞, 胡文韜, 劉欣偉, 等. 含鐵硅酸鹽礦物重構與選擇性回收. 工程科學學報, 2015, 37(10):1268
Ju H X, Hu W T, Liu X W, et al. Reengineering and selective recovery of iron-bearing silicate minerals. Chin J Eng, 2015, 37(10): 1268
|
[2] |
Li H M, Zhang Z J, Li L X, et al. Types and general characteristics of the BIF-related iron deposits in China. Ore Geol Rev, 2014, 57: 264 doi: 10.1016/j.oregeorev.2013.09.014
|
[3] |
Zhang Z C, Hou T, Santosh M, et al. Spatio-temporal distribution and tectonic settings of the major iron deposits in China: An overview. Ore Geol Rev, 2014, 57: 247 doi: 10.1016/j.oregeorev.2013.08.021
|
[4] |
Zhang D J, Agterberg F, Cheng Q M, et al. A comparison of modified fuzzy weights of evidence, fuzzy weights of evidence, and logistic regression for mapping mineral prospectivity. Math Geosci, 2014, 46(7): 869 doi: 10.1007/s11004-013-9496-8
|
[5] |
李占金, 喬國剛, 米雪玉, 等. 冀東磁鐵礦石粉碎過程節能降耗研究. 中國礦業大學學報, 2008, 37(5):625 doi: 10.3321/j.issn:1000-1964.2008.05.009
Li Z J, Qiao G G, Mi X Y, et al. Energy savings during magnetite ore preparation in eastern Hebei Province. J China Univ Min Technol, 2008, 37(5): 625 doi: 10.3321/j.issn:1000-1964.2008.05.009
|
[6] |
印萬忠, 丁亞卓. 鐵礦選礦新技術與新設備. 北京: 冶金工業出版社, 2008
Yin W Z, Ding Y Z. New Technology and Equipment for Iron Ore Dressing. Beijing: Metallurgical Industry Press, 2008
|
[7] |
Yin J N, Lindsay M, Teng S R. Mineral prospectivity analysis for BIF iron deposits: A case study in the Anshan-Benxi area, Liaoning Province, North-East China. Ore Geol Rev, 2020, 120: 102746 doi: 10.1016/j.oregeorev.2018.11.019
|
[8] |
Yin W Z, Yang X S, Zhou D P, et al. Shear hydrophobic flocculation and flotation of ultrafine Anshan hematite using sodium oleate. Trans Nonferrous Met Soc China, 2011, 21(3): 652 doi: 10.1016/S1003-6326(11)60762-0
|
[9] |
李麗匣, 朱玉蘭, 袁致濤, 等. 鞍山式赤鐵礦石反浮選尾礦鐵品位偏高機制. 東北大學學報(自然科學版), 2013, 34(11):1647 doi: 10.12068/j.issn.1005-3026.2013.11.030
Li L X, Zhu Y L, Yuan Z T, et al. Mechanism for higher iron grade of reverse flotation tailings of Anshan-type hematite ore. J Northeast Univ Nat Sci, 2013, 34(11): 1647 doi: 10.12068/j.issn.1005-3026.2013.11.030
|
[10] |
高鵬, 紀新, 任多振, 等. 含碳酸鹽赤鐵礦石浮選中礦深度還原試驗研究. 中國礦業大學學報, 2013, 42(5):812
Gao P, Ji X, Ren D Z, et al. Iron recovery from flotation middling produced in carbonates-bearing hematite ore using coal-based reduction. J China Univ Min Technol, 2013, 42(5): 812
|
[11] |
崔寶玉, 魏德洲, 李天舒, 等. 齊大山鐵礦選礦工藝優化研究. 金屬礦山, 2016(8):75 doi: 10.3969/j.issn.1001-1250.2016.08.015
Cui B Y, Wei D Z, Li T S, et al. Optimization of beneficiation technology on iron mine from qidashan. Met Mine, 2016(8): 75 doi: 10.3969/j.issn.1001-1250.2016.08.015
|
[12] |
Tang C, Li K Q, Ni W, et al. Recovering iron from iron ore tailings and preparing concrete composite admixtures. Minerals, 2019, 9(4): 232 doi: 10.3390/min9040232
|
[13] |
王運敏, 田嘉印, 王化軍, 等. 中國黑色金屬礦選礦實踐. 北京: 科學出版社, 2008
Wang Y M, Tian J Y, Wang H J, et al. Beneficiation Practice of Ferrous Metal Ore in China. Beijing: Science Press, 2008
|
[14] |
張瑞洋. 鞍山式鐵礦石分選尾礦中鐵的回收試驗研究[學位論文]. 沈陽: 東北大學, 2011
Zhang R Y. Experimental Research on Recovery of Iron Contained in the Separation Tailings of Anshan-Type Iron Ore [Dissertation]. Shenyang: Northeastern University, 2011
|
[15] |
范敦城. 齊大山鐵尾礦預富集—深度還原提鐵及尾渣綜合利用研究[學位論文]. 北京: 北京科技大學, 2018
Fan D C. Research on Pre-Concentration and Deep Reduction of Qidashan Iron Ore Tailings and the Comprehensive Utilization of Tailings [Dissertation]. Beijing: University of Science and Technology Beijing, 2018
|
[16] |
李瑾, 倪文, 范敦城, 等. 齊大山鐵尾礦工藝礦物學研究. 金屬礦山, 2014(1):158
Li J, Ni W, Fan D C, et al. Process mineralogy research on iron tailings from qidashan. Met Mine, 2014(1): 158
|
[17] |
劉文剛, 魏德洲, 王曉慧, 等. 反浮選鐵尾礦正—反浮選再選研究. 金屬礦山, 2011(1):147
Liu W G, Wei D Z, Wang X H, et al. Application of Direct-reverse Flotation in Reconcentration of iron ore tailings from Reverse Flotation. Met Mine, 2011(1): 147
|
[18] |
余建文, 韓躍新, 李艷軍, 等. 東鞍山貧鐵礦石磁選預富集行為. 東北大學學報(自然科學版), 2019, 40(1):94 doi: 10.12068/j.issn.1005-3026.2019.01.018
Yu J W, Han Y X, Li Y J, et al. Pre-enrichment behaviors of low-grade donganshan iron ore using magnetic separation. J Northeast Univ Nat Sci, 2019, 40(1): 94 doi: 10.12068/j.issn.1005-3026.2019.01.018
|
[19] |
曹世明, 曹亦俊, 馬子龍, 等. 焦煤中微細粒嵌布黃鐵礦的浮選脫除研究. 中國礦業大學學報, 2019, 48(6):1366
Cao S M, Cao Y J, Ma Z L, et al. The flotation separation of fine pyrite locked in coking coal. J China Univ Min Technol, 2019, 48(6): 1366
|
[20] |
李東, 印萬忠, 孫春寶, 等. 赤鐵礦的自載體作用及對浮選的影響. 工程科學學報, 2019, 41(11):1397
Li D, Yin W Z, Sun C B, et al. The self-carrier effect of hematite in the flotation. Chin J Eng, 2019, 41(11): 1397
|
[21] |
李麗匣, 印萬忠, 王宇斌, 等. 菱鐵礦對假象赤鐵礦與石英混合礦浮選的影響. 東北大學學報(自然科學版), 2012, 33(3):431 doi: 10.12068/j.issn.1005-3026.2012.03.031
Li L X, Yin W Z, Wang Y B, et al. Effect of siderite on flotation separation of martite and quartz. J Northeast Univ Nat Sci, 2012, 33(3): 431 doi: 10.12068/j.issn.1005-3026.2012.03.031
|
[22] |
胡文韜, 王化軍, 劉欣偉, 等. 微細鐵顆粒的單體解離特性和選擇性回收工藝. 北京科技大學學報, 2013, 35(11):1424
Hu W T, Wang H J, Liu X W, et al. Monomer dissociation characteristics and selective recovery technology of micro-fine iron particles. J Univ Sci Technol Beijing, 2013, 35(11): 1424
|
[23] |
李德鵬, 代偉, 趙大勇, 等. 一種基于魯棒隨機向量函數鏈接網絡的磨礦粒度集成建模方法. 工程科學學報, 2019, 41(1):67
Li D P, Dai W, Zhao D Y, et al. Grinding process particle size modeling method using robust RVFLN-based ensemble learning. Chin J Eng, 2019, 41(1): 67
|
[24] |
李東, 李正要, 印萬忠, 等. 粒度大小對赤鐵礦和石英浮選分離的影響. 工程科學學報, 2020, 42(5):586
Li D, Li Z Y, Yin W Z, et al. Effect of particle size on flotation separation of hematite and quartz. Chin J Eng, 2020, 42(5): 586
|
[25] |
Li T, Wang S L, Xu F, et al. Study of the basic mechanical properties and degradation mechanism of recycled concrete with tailings before and after carbonation. J Clean Prod, 2020, 259: 120923 doi: 10.1016/j.jclepro.2020.120923
|