Removing chlorine of CuCl residue from zinc hydrometallurgy by microwave roasting

Shuai-dan Lu , Yi Xia , Chang-yuan Huang , Guo-qin Wu , Jin-hui Peng , Shao-hua Ju , Li-bo Zhang

Journal of Central South University ›› 2014, Vol. 21 ›› Issue (4) : 1290 -1295.

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Journal of Central South University ›› 2014, Vol. 21 ›› Issue (4) : 1290 -1295. DOI: 10.1007/s11771-014-2065-6
Article

Removing chlorine of CuCl residue from zinc hydrometallurgy by microwave roasting

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Abstract

Most Zn hydrometallurgy factories adopt Cu2SO4 as a dechlorination reagent from zinc solution nowadays, thus much CuCl residue is produced. The existing process of treating this residue is washing with water or sodium carbonate solution, which would cause a lot of troubles to water treatment and waste discharge. A method of microwave roasting was adopted for dechlorination of CuCl residue. A 1.5 kW microwave roasting equipment with dust collection and tail gas adsorption systems was set up and applied during the experiment. By investigating the effect of temperature, heat preservation time, moisture content of raw material and grain size of samples on the dechlorination, the optimal experimental condition is obtained. When the samples with 2% moisture and <150 μm grain size are microwave roasted at 400 °C for 2 h, the Cl content turns from 14.27% to 1.35% and the dechlorination rate is as high as 90%, while that with conventional heating is only 60%–80%. The phase change of the roasting process investigated with X-ray diffraction verifies that CuCl in CuCl residue is removed by being transformed into CuO.

Keywords

microwave roasting / zinc hydrometallurgy / dechlorination / CuCl residue

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Shuai-dan Lu, Yi Xia, Chang-yuan Huang, Guo-qin Wu, Jin-hui Peng, Shao-hua Ju, Li-bo Zhang. Removing chlorine of CuCl residue from zinc hydrometallurgy by microwave roasting. Journal of Central South University, 2014, 21(4): 1290-1295 DOI:10.1007/s11771-014-2065-6

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References

[1]

MathewsonC HZinc: The science and technology of the metal, its alloys and compounds [M], 1959, New York, Reinhold Pub Corp: 176-178

[2]

JhaM K, KumarV, SinghR J. Review of hydrometallurgical recovery of zinc from industrial wastes [J]. Resources, Conservation and Recycling, 2001, 33(1): 1-22

[3]

SahinF C, DerinB, YucelO. Chloride removal from zinc ash [J]. Scandinavian Journal of Metallurgy, 2000, 29(5): 224-230

[4]

YASUSHI Y, KOICHIRO S. Apparatus and method for treatment of municipal ash containing heavy metals and chlorine compounds: JP 10156313A [P]. 1998-06-16.

[5]

FERNAND J, JOSEPH B. Process for the elimination of chloride from zinc sulphate solutions: US 4005174 [P]. 1977-01-25.

[6]

GüresinN, TopkayaY A. Dechlorination of a zinc dross [J]. Hydrometallurgy, 1998, 49(1/2): 179-187

[7]

JorjaniE, ChapiH G, KhoramiM T. Ultra clean coal production by microwave irradiation pretreatment and sequential leaching with HF followed by HNO3 [J]. Fuel Processing Technology, 2011, 92(10): 1898-1904

[8]

SwartA J, MendonidisP. Evaluating the effect of radio-frequency pre-treatment on granite rock samples for comminution purposes [J]. International Journal of Mineral Processing, 2013, 120: 1-7

[9]

HuangM, PengJ-h, YangJ-j, WangJ-qiang. Microwave cavity perturbation technique for measuring the moisture content of sulphide minerals concentrates [J]. Minerals Engineering, 2007, 20(1): 92-94

[10]

LiY, LeiY, ZhangL-b, PengJ-h, LiC-long. Microwave drying characteristics and kinetics of ilmenite [J]. Transactions of Nonferrous Metals Society of China, 2011, 21(1): 202-207

[11]

HiromiY, YukaT, YukiH, YoshiyukiM. Microwaveroasting effects on the oxidative stability of oils and molecular species of triacylglycerols in the kernels of pumpkin (Cucurbita spp.) seeds [J]. Journal of Food Composition and Analysis, 2006, 19(4): 330-339

[12]

UysalN, SumnuG, SahinS. Optimization of microwave-infrared roasting of hazelnut [J]. Journal of Food Engineering, 2009, 90(2): 255-261

[13]

XiaH-y, PengJ-h, NiuH, HuangM-y, ZhangZ-y, ZhangZ-b, HuangMing. Non-isothermal microwave leaching kinetics and absorption characteristics of primary titanium-rich materials [J]. Transactions of Nonferrous Metals Society of China, 2010, 20(4): 721-726

[14]

IsabelS S P, HelenaM V M S. Selective leaching of molybdenum from spent hydrodesulphurisation catalysts using ultrasound and microwave methods [J]. Hydrometallurgy, 2012, 129/130: 19-25

[15]

GuoS-h, LiW, PengJ-h, NiuH, HuangM-y, ZhangL-b, ZhangS-m, HuangMing. Microwave-absorbing characteristics of mixtures of different carbonaceous reducing agents and oxidized ilmenite [J]. International Journal of Mineral Processing, 2009, 93(3/4): 289-293

[16]

ZhaiX-j, WuQ, FuY, MaL-z, FanC-l, LiN-jun. Leaching of nickel laterite ore assisted by microwave technique [J]. Transactions of Nonferrous Metals Society of China, 2010, 20: 77-81

[17]

ZhangN-b, BaiC-g, MaM-y, LiZ-ying. Preparation of BaAl2O4 by microwave sintering [J]. Transactions of Nonferrous Metals Society of China, 2010, 20(10): 2020-2025

[18]

HuangX-h, HuangX-y, MaoH-k, YinZ-xi. The study on microwave magnetic roasting plus magnetic separation and acid pickling to enrich Nb of low-grade niobium minerals [J]. Applied Mechanics and Materials, 2012, 182/183: 17-22

[19]

HidakaH, SaitouA, HonjouH, HosodaK, MoriyaM, SerponeN. Microwave-assisted dechlorination of polychlorobenzenes by hypophosphite anions in aqueous alkaline media in the presence of Pd-loaded active carbon [J]. Journal of Hazardous Materials, 2007, 148(1/2): 22-28

[20]

LiuX-t, ZhaoW, SunK, ZhangG-x, ZhaoYe. Dechlorination of PCBs in the simulative transformer oil by microwave-hydrothermal reaction with zero-valent iron involve [J]. Chemosphere, 2011, 82(5): 773-777

[21]

JouC J G, HsiehS C, LeeC L, LinC, HuangH W. Combining zero-valent iron nanoparticles with microwave energy to treat chlorobenzene engineers [J]. Journal of the Taiwan Institute of Chemical, 2010, 41(2): 216-220

[22]

TakashimaH, KarchesM, KannoY. Catalytic decomposition of trichloroethylene over Pt-/Ni-catalyst under microwave heating [J]. Applied Surface Science, 2008, 254(7): 2023-2030

[23]

ItoM, UshidaK, NakaoN, KikuchiN, NozakiR, AsaiK, WashioM. Dechlorination of poly(vinyl chloride) by microwave irradiation I: A simple examination using a commercial microwave oven [J]. Polymer Degradation and Stability, 2006, 91(8): 1694-1700

[24]

HuaY-x, CaiC-j, CuiYan. Microwave-enhanced roasting of copper sulfide concentrate in the presence of CaCO3 [J]. Separation and Purification Technology, 2006, 50(1): 22-29

[25]

AmankwahR K, PicklesC A. Microwave roasting of a carbonaceous sulphidic gold concentrate [J]. Minerals Engineering, 2009, 22(13): 1095-1101

[26]

ChangY-f, ZhaiX-j, FuY, MaL-z, LiB-c, ZhangT-an. Phase transformation in reductive roasting of laterite ore with microwave heating [J]. Transactions of Nonferrous Metals Society of China, 2008, 18(4): 969-973

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