2024 - Sustainable Industrial Processing Summit
SIPS 2024 Volume 13. Stelter Intl. Symp / Non-ferrous Smelting & Hydro/Electrochemical Processing

Editors:F. Kongoli, J. Antrekowitsch, A. Charitos, C. Oosterhof, Z. Wang
Publisher:Flogen Star OUTREACH
Publication Year:2024
Pages:192 pages
ISBN:978-1-998384-28-0 (CD)
ISSN:2291-1227 (Metals and Materials Processing in a Clean Environment Series)
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    NUMERICAL STUDY ON HYDRODYNAMICS AND INTERPHASE REACTIONS FOR CASSITERITE REDUCTION WITH HYDROGEN

    Albrecht Voigt1; Sesi Preetam Kota1; Andreas Richter1;
    1TU BERGAKADEMIE FREIBERG, Freiberg, Germany;
    Type of Paper: Regular
    Id Paper: 472
    Topic: 6

    Abstract:

    In this present work, a computational fluid dynamics (CFD) model is devised to study and understand the flow hydrodynamics and chemical reactions occurring between the liquid molten concentrate containing cassiterite and gas phase containing hydrogen. 

    This study is motivated by the goal for CO2-neutral production and recovery of valuable non-ferrous metals, e.g. copper, tin and zinc. The metallurgical industry is facing major challenges in transforming existing processes in terms of substitution of fossil fuels, considering costs and safety of plant operation and maintaining product quality. [1] Hydrogen is considered as a promising substituent to fossil fuels as reducing agent in high-temperature metallurgical applications, like smelting in top-submerged-lance (TSL) processes. [2] However, replacing traditional systems with hydrogen has a major influence on the process itself. Hence, numerical models enable a more detailed understanding of hydrodynamics between gas and slag phase as well as thermochemical interactions at the reactive interphase.  

    In order to study the effect of hydrogen, a CFD model has been developed according to an experimental setup. [3] In the experiment a lance was introduced into the molten cassiterite though which a mixture of hydrogen and argon is injected into the molten concentrate. A one-fluid approach has been used to understand the interactions and track the interface between the gas and slag phase. Simulations have been carried out to investigate the influence of varying interphase reaction rates and gas flow rates on the flow hydrodynamics and the reduction performance.  

    Keywords:

    CFD; Hydrogen; Slag smelting; Cassiterite

    Cite this article as:

    Voigt A, Kota S, Richter A. (2024). NUMERICAL STUDY ON HYDRODYNAMICS AND INTERPHASE REACTIONS FOR CASSITERITE REDUCTION WITH HYDROGEN . In F. Kongoli, J. Antrekowitsch, A. Charitos, C. Oosterhof, Z. Wang (Eds.), Sustainable Industrial Processing Summit Volume 13 Stelter Intl. Symp / Non-ferrous Smelting & Hydro/Electrochemical Processing (pp. 187-188). Montreal, Canada: FLOGEN Star Outreach