The energy needed to concentrate minerals from common rocks: The case of copper ore

被引:20
作者
Jose-Luis, Palacios [1 ]
Abadias, Alejandro [2 ]
Valero, Alicia [3 ]
Valero, Antonio [3 ]
Reuter, Markus [2 ]
机构
[1] Escuela Politec Nacl, Dept Ingn Mecan, Ladron Guevera E11-25, Quito 170517, Ecuador
[2] Helmholtz Inst Freiberg Resource Technol HIF, Chemnitzer Str 40, D-09599 Freiberg, Germany
[3] Univ Zaragoza, CIRCE Inst, Res Ctr Energy Resources & Consumpt, CIRCE Bldg,Campus Rio Ebro, Zaragoza 50018, Spain
关键词
Copper; Mining energy; Ore grade decline; Thanatia; Exergy replacement cost; RESOURCES; TRENDS; EXERGY; COMMINUTION; SCARCITY; COST;
D O I
10.1016/j.energy.2019.05.145
中图分类号
O414.1 [热力学];
学科分类号
摘要
A way to assess today's mineral patrimony is to evaluate how much mining energy is saved today because of having concentrated mines instead of finding the minerals dispersed throughout the crust. This can be assessed through the so-called exergy replacement costs (ERC), which are a measure of the exergy required to extract and concentrate minerals from barerock. Previous studies evaluated such exergy using a theoretical approach. In this paper, from a mineral processing point-of-view through a model developed with HSC Chemistry 9.4.1, we calculated the energy needed to concentrate copper from common rocks at average crustal concentrations. In the model, current state-of-the-art technologies for copper concentration were considered. The results were then compared to the theoretical value obtained before for the ERC of copper and helped to update it. The updated ERC value is of one order of magnitude greater than the original one. This difference in magnitude enhances, even more, the issue of ore grade decline in terms of the associated spiraling energy required for mining. It also reveals the importance of valuing properly the mineral heritage of nations and the effort that should be placed for increasing secondary metal production. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页码:494 / 503
页数:10
相关论文
共 70 条
[21]  
Gorain B.K., 2000, ENCY SEPARATION SCI, P1502
[22]  
Gray D., 2016, Kevitsa Nickel Copper Mine
[23]  
Haque N., 2012, 26 INT MIN PROC C IM, V17, P01908
[24]   The impact of copper scarcity on the efficiency of 2050 global renewable energy scenarios [J].
Harmsen, J. H. M. ;
Roes, A. L. ;
Patel, M. K. .
ENERGY, 2013, 50 :62-73
[25]   Mineral resources: Geological scarcity, market price trends, and future generations [J].
Henckens, M. L. C. M. ;
van Ierland, E. C. ;
Driessen, P. P. J. ;
Worrell, E. .
RESOURCES POLICY, 2016, 49 :102-111
[26]  
International Copper Study Group, 2017, WORLD COPP FACTB
[27]  
King R.P., 2012, Modeling and simulation of mineral processing systems, VSecond
[28]  
Krisanda JM, 2014, US GEOLOGICAL SURVEY
[29]  
Latchireddi S., 2013, 45 ANN M CAN MIN PRO
[30]  
Lindroos EW, 1985, SME MINERAL PROCESSI, V2