Skip to main content
Top
Published in: Metallurgist 9-10/2018

25-01-2018

Development of Waelz-Oxide Hydrometallurgical Processing Technology with Preparation of Carbonized Lead Cake

Authors: S. A. Yakornov, A. M. Pan’shin, P. A. Kozlov, D. A. Ivakin, E. V. Golubeva

Published in: Metallurgist | Issue 9-10/2018

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

Comprehensive processing of ore and technogenic raw material containing zinc and lead requires improvement of lead-containing product quality provided by zinc industry enterprises for lead extraction by a pyrometallurgical method. Research and development are conducted for Waelz-oxide pyrometallurgical treatment technology with preparation of carbonized lead cake containing more than 45% lead, not more than 5% sulfur, and with a moisture content after filtration less than 35% suitable for black lead preparation in short-drum kilns with good technical and economic efficiency. Carbonization and pyrometallurgical treatment of carbonized lead cake make it possible to reduce soda consumption and sulfur compound concentration considerably in waste gases. Introduction of contemporary technology for preparing Waelzprocess charges drawing on treatment of copper production zinc- and lead-containing dust, and also optimizing process parameters for cake preparation and carbonizing make it possible to increase the lead content in carbonized cake from 40–43 to 46–50%. In order to resolve the problem of increasing lead content and reducing lead cake moisture content, filtered in filter-presses, research is conducted in the course of which the phase composition of sulfate and carbonized products and thermal effects proceeding during carbonized cake drying and heating are studied. Optimum parameters are determined for introducing the technology on the bases of industrial tests. Washing lead sulfate cake before carbonization makes it possible to increase the lead content by 2–4% in carbonized cake. A reduction in pH during lead cake carbonization from 8.5–9.0 to 7.0–7.5 makes it possible to reduce the filtered product moisture content from 35–36 to 27–30%.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
1.
go back to reference M. E. Syroeshkin and Sh. I. Yumakaev, Treatment of Waelz-Oxides, Slag Distillate and Dust in Lead-Zinc Plants, Metallurgiya. Moscow (1971). M. E. Syroeshkin and Sh. I. Yumakaev, Treatment of Waelz-Oxides, Slag Distillate and Dust in Lead-Zinc Plants, Metallurgiya. Moscow (1971).
2.
go back to reference A. P. Snurnikov, Zinc Hydrometallurgy, Metallurgiya, Moscow (1971). A. P. Snurnikov, Zinc Hydrometallurgy, Metallurgiya, Moscow (1971).
3.
go back to reference P. A. Kozlov, Waelz Process, Ruda i Metally, Moscow (2002). P. A. Kozlov, Waelz Process, Ruda i Metally, Moscow (2002).
4.
go back to reference Yu. B. Reshetnikov, O. V. Belyakov, K. M. Kozlov, and M. S. Varganov, “Development of technology for leaching calcined Waelz-oxide,” Tsvet. Met., No. 5, 36–39 (2015). Yu. B. Reshetnikov, O. V. Belyakov, K. M. Kozlov, and M. S. Varganov, “Development of technology for leaching calcined Waelz-oxide,” Tsvet. Met., No. 5, 36–39 (2015).
5.
go back to reference Yu. P. Romanteev and V. P. Bystrov, Metallurgy of Heavy Nonferrous Metals. Lead. Zinc, Cadmium, MISiS, Moscow (2010). Yu. P. Romanteev and V. P. Bystrov, Metallurgy of Heavy Nonferrous Metals. Lead. Zinc, Cadmium, MISiS, Moscow (2010).
6.
go back to reference A. V. Tarasov, A. D. Besser, V. I. Mal’tsev, and V. S. Sorokina, Metallurgical Treatment of Secondary Lead Raw Material, Gintsvetmet, Moscow (2003). A. V. Tarasov, A. D. Besser, V. I. Mal’tsev, and V. S. Sorokina, Metallurgical Treatment of Secondary Lead Raw Material, Gintsvetmet, Moscow (2003).
7.
go back to reference V. V. Geikhman, L. A. Kazanbaev, P. A. Kozlov, et al., “Utilization of lead cakes of zinc production,” Tsvet. Met., No. 1, 21–24 (2003). V. V. Geikhman, L. A. Kazanbaev, P. A. Kozlov, et al., “Utilization of lead cakes of zinc production,” Tsvet. Met., No. 1, 21–24 (2003).
8.
go back to reference L. A. Kazanbaev, P. A. Kozlov, and A. V. Kolesnikov, Patent 2123059 RF, IPC С22В7/00, “Method for processing lead cakes,” subm. 11.27.1997, publ., 12.10.1998 L. A. Kazanbaev, P. A. Kozlov, and A. V. Kolesnikov, Patent 2123059 RF, IPC С22В7/00, “Method for processing lead cakes,” subm. 11.27.1997, publ., 12.10.1998
9.
go back to reference V. V. Geikhman, L. A. Kazanbaev, P. A. Kozlov, and A. V. Kolesnikov, “Treatment of zinc production lead cake,” Tsvet. Met., No. 5, 35–36 (2000). V. V. Geikhman, L. A. Kazanbaev, P. A. Kozlov, and A. V. Kolesnikov, “Treatment of zinc production lead cake,” Tsvet. Met., No. 5, 35–36 (2000).
10.
go back to reference S. S. Naboichenko, S. V. Karelov, S. V. Mamyachenkov, and S. A. Yakornov, “Comprehensive treatment of lead-containing technogenic waste of Ural copper smelting enterprises,” Gorn. Zh., No. 11–12, 250–255 (1997). S. S. Naboichenko, S. V. Karelov, S. V. Mamyachenkov, and S. A. Yakornov, “Comprehensive treatment of lead-containing technogenic waste of Ural copper smelting enterprises,” Gorn. Zh., No. 11–12, 250–255 (1997).
11.
go back to reference A. V. Zatonskii, K. V. Bovykin, R. R. Asadulin, and E. V. Golubeva, “Development and testing of industrial technology for carbonizing lead cake,” Tsvet. Met., No. 5, 55–58 (2015). A. V. Zatonskii, K. V. Bovykin, R. R. Asadulin, and E. V. Golubeva, “Development and testing of industrial technology for carbonizing lead cake,” Tsvet. Met., No. 5, 55–58 (2015).
12.
go back to reference P. A. Kozlov, A. V. Zatonskii, V. V. Reshetnikov, et al., “Study and development of technology for hydrometallurgical treatment of calcined Waelz-oxide with indium extraction,” Tsvet. Met., No. 5, 49–51 (2010). P. A. Kozlov, A. V. Zatonskii, V. V. Reshetnikov, et al., “Study and development of technology for hydrometallurgical treatment of calcined Waelz-oxide with indium extraction,” Tsvet. Met., No. 5, 49–51 (2010).
13.
go back to reference S. A. Yakornov, A. M. Panyshin, P. A. Kozlov, and D. A. Ivakin, “Development of charge granulation technology based on electric furnace dust for pyrometallurgical treatment in rotary kilns,” Metallurg, No. 7, 25–29 (2017). S. A. Yakornov, A. M. Panyshin, P. A. Kozlov, and D. A. Ivakin, “Development of charge granulation technology based on electric furnace dust for pyrometallurgical treatment in rotary kilns,” Metallurg, No. 7, 25–29 (2017).
14.
go back to reference P. A. Kozlov, A. F. Pan’shin, V. N. Vyatkin, and Yu. V. Reshetnikov, “Study and development of pyrometallurgical treatment technology for copper industry waste with extraction of zinc, lead, and tin,” Tsvet. Met., No. 5, 46–50 (2015). P. A. Kozlov, A. F. Pan’shin, V. N. Vyatkin, and Yu. V. Reshetnikov, “Study and development of pyrometallurgical treatment technology for copper industry waste with extraction of zinc, lead, and tin,” Tsvet. Met., No. 5, 46–50 (2015).
15.
go back to reference B. P. Nikol’skii, Chemist’s Handbook, Khimiya, Leningrad (1968), Vol. 2. B. P. Nikol’skii, Chemist’s Handbook, Khimiya, Leningrad (1968), Vol. 2.
16.
go back to reference R. L. Frost, M. L. Weier, W. N. Martens, and S. Mills, “Molecular structure of segnitite: A Raman spectroscopic study,” J. Molec. Struct., 752, No. 1–3, 178–185 (2005).CrossRef R. L. Frost, M. L. Weier, W. N. Martens, and S. Mills, “Molecular structure of segnitite: A Raman spectroscopic study,” J. Molec. Struct., 752, No. 1–3, 178–185 (2005).CrossRef
Metadata
Title
Development of Waelz-Oxide Hydrometallurgical Processing Technology with Preparation of Carbonized Lead Cake
Authors
S. A. Yakornov
A. M. Pan’shin
P. A. Kozlov
D. A. Ivakin
E. V. Golubeva
Publication date
25-01-2018
Publisher
Springer US
Published in
Metallurgist / Issue 9-10/2018
Print ISSN: 0026-0894
Electronic ISSN: 1573-8892
DOI
https://doi.org/10.1007/s11015-018-0583-4

Other articles of this Issue 9-10/2018

Metallurgist 9-10/2018 Go to the issue

Premium Partners