Steel Plant Wastes as a Resource of Rare Earth Elements and Rare Metals-Characterisation, Resource Estimation, and Economic Assessment

被引:1
作者
Abhilash [1 ]
Meshram, Pratima [1 ]
Gupta, Ajay [2 ]
Sen, Subhadra [2 ]
机构
[1] CSIR, Natl Met Lab, Jamshedpur, India
[2] Tata Steel, Jamshedpur, India
关键词
Steel plant; Iron and steel making slags; Characterisation; Critical elements; Economics;
D O I
10.1007/s12666-022-02794-0
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
Steel production results in a high magnitude of wastes that are either processed in the plant or sold for by-product generation due to stringent environmental regulations. Approximately 2-4 ton steel slag is generated per ton of crude steel by the steel plant. The major slags being highlighted are blast furnace (BF) slag, Linz-Donawitz (LD) slag, and Laddle-refining (LF) slag. As these slags are obtained primarily from the mixing of iron ore with coke and after a series of high-temperature reactions, metallization of some rare earth elements and rare metals is seen in these slags. This study is aimed to characterize these slag wastes generated from TATA STEEL, India, for the content of strategic and rare earth elements omnipresent by various tools like ICP-MS, SEM, and ED-XRF (equipped with Tornado analysis). BF slag is very rich in Ce (177 ppm), followed by 96 ppm La and 74 ppm Nd, apart from Cs (88 ppm), Sb (118 ppm), Sr (411 ppm), and Zr (337 ppm). Nearly 765 ppm V and 67 ppm Nb are reported in the LD slag. LF slag was analyzed with the presence of 66 ppm Ba, 96 ppm Sb, 48 ppm Nb and 70 ppm Cs. These low tenor raw materials owing to huge tonnage availability can serve as a viable secondary resource for utilization. They would be able to cater the critical metal demand ensuring a zero-waste process as per the economic analysis presented.
引用
收藏
页码:1321 / 1330
页数:10
相关论文
共 17 条
[1]   Exploring blast furnace slag as a secondary resource for extraction of rare earth elements [J].
Abhilash ;
Meshram, P. ;
Sarkar, S. ;
Venugopalan, T. .
MINERALS & METALLURGICAL PROCESSING, 2017, 34 (04) :178-182
[2]   Evaluating Rare Earth Element Availability: A Case with Revolutionary Demand from Clean Technologies [J].
Alonso, Elisa ;
Sherman, Andrew M. ;
Wallington, Timothy J. ;
Everson, Mark P. ;
Field, Frank R. ;
Roth, Richard ;
Kirchain, Randolph E. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2012, 46 (06) :3406-3414
[3]   Closing the Lifecycle of Rare Earth Magnets: Discovery of Neodymium in Slag from Steel Mills [J].
Bandara, H. M. Dhammika ;
Mantell, Mark A. ;
Darcy, Julia W. ;
Emmert, Marion H. .
ENERGY TECHNOLOGY, 2015, 3 (02) :118-120
[4]  
Basu A, 2019, INDIAN STEEL IND GRO
[5]  
Batchu NK, 2019, CRITICAL AND RARE EARTH ELEMENTS: RECOVERY FROM SECONDARY RESOURCES, P365, DOI 10.1201/9780429023545-19
[6]   Hydrometallurgical Processes for the Recovery of Metals from Steel Industry By-Products: A Critical Review [J].
Binnemans, Koen ;
Jones, Peter Tom ;
Manjon Fernandez, Alvaro ;
Masaguer Torres, Victoria .
JOURNAL OF SUSTAINABLE METALLURGY, 2020, 6 (04) :505-540
[7]   PHASE RELATIONS, CRYSTAL STRUCTURES, AND MAGNETIC PROPERTIES OF ERBIUM-IRON COMPOUNDS [J].
BUSCHOW, KHJ ;
VANDERGO.AS .
PHYSICA STATUS SOLIDI, 1969, 35 (01) :515-+
[8]  
Colligan G, 2016, EPIC271A COL SCH MIN
[9]  
Das B., 2002, EJMP EP EUROPEAN J M, V2, P61
[10]  
Dias R, 2002, GLOBAL NONFERROUS MA, P27