Skip to main content
Top

Complex Multiphase Coupling Mechanisms in the Multi-lance Top-Blown Copper Converting Furnace

  • 12-09-2024
  • Original Research Article
Published in:

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

search-config
loading …

Abstract

The article delves into the intricate multiphase flow dynamics within a multi-lance top-blown copper converting furnace, emphasizing the importance of understanding these mechanisms for enhancing smelting efficiency and product quality. It highlights the challenges posed by the complex and unsteady nature of the process, and the need for advanced computational methods to predict and characterize the behavior of gas-liquid interactions. The study employs the VOF model coupled with the standard k-ε turbulence model to simulate the flow patterns and cavity formation, providing valuable insights into the relationship between lance configuration, cavity shape, and momentum transfer. The research also addresses the issue of splashing and wall shear stress, which are critical for furnace lining lifetime and operational efficiency. The findings offer practical guidance for optimizing lance parameters and improving the overall performance of continuous copper smelting processes.

Not a customer yet? Then find out more about our access models now:

Individual Access

Start your personal individual access now. Get instant access to more than 164,000 books and 540 journals – including PDF downloads and new releases.

Starting from 54,00 € per month!    

Get access

Access for Businesses

Utilise Springer Professional in your company and provide your employees with sound specialist knowledge. Request information about corporate access now.

Find out how Springer Professional can uplift your work!

Contact us now
Title
Complex Multiphase Coupling Mechanisms in the Multi-lance Top-Blown Copper Converting Furnace
Authors
Qijia Yang
Shiliang Yang
Junyi Hu
Hua Wang
Publication date
12-09-2024
Publisher
Springer US
Published in
Metallurgical and Materials Transactions B / Issue 6/2024
Print ISSN: 1073-5615
Electronic ISSN: 1543-1916
DOI
https://doi.org/10.1007/s11663-024-03262-4
This content is only visible if you are logged in and have the appropriate permissions.

Premium Partners

IST - International Surface Technology (Link opens in a new window)

The leading magazine for all topics related to surface technology.
For decision-makers and users from all areas of industry.

    Image Credits
    Nordson Logo/© Nordson Deutschland GmbH, Ecoclean Logo/© SBS Ecoclean Group, Akzo Nobel Power Coatings GmbH/© Akzo Nobel Power Coatings GmbH, Sames GmbH/© Sames GmbH, Karl Bubenhofer AG/© Karl Bubenhofer AG, Munk GmbH/© Munk GmbH, Endress+Hauser Flow Deutschland/© Endress+Hauser Flow Deutschland, IST - International Surface Technology