Kinetics Study on Reduction of CaWO4 by Si from 1423 K to 1523 K

Investigation on reduction kinetics of scheelite(CaWO4) provides important fundamental knowledge to control and optimize process of Ferrotungsten manufacturing and direct reduction of scheelite in steelmaking. In this work, the isothermal reduction kinetics of CaWO4 powder by Si powder at 1,423 K, 1...

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Main Authors: Shu Qifeng, Wu Jing, Chou Kuochih
Format: Article
Language:English
Published: De Gruyter 2015-12-01
Series:High Temperature Materials and Processes
Subjects:
Online Access:https://doi.org/10.1515/htmp-2014-0161
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spelling doaj-1aa141158e504e33bdf52dbec3b8bd0d2021-09-06T19:19:54ZengDe GruyterHigh Temperature Materials and Processes0334-64552191-03242015-12-0134880581110.1515/htmp-2014-0161Kinetics Study on Reduction of CaWO4 by Si from 1423 K to 1523 KShu QifengWu JingChou KuochihInvestigation on reduction kinetics of scheelite(CaWO4) provides important fundamental knowledge to control and optimize process of Ferrotungsten manufacturing and direct reduction of scheelite in steelmaking. In this work, the isothermal reduction kinetics of CaWO4 powder by Si powder at 1,423 K, 1,473 K and 1,523 K, where all reactants and products are in solid state, was investigated by using X-ray diffraction quantitative analysis. Scanning electronic microscopy (SEM) attached with energy dispersive spectra (EDS) was also employed to investigate the microstructure of reaction interface. Both Jander model and Ginstling–Brounshtein model could describe kinetics of reduction of CaWO4 well, whereas 3D interfacial reaction model could not describe the kinetics of reduction of CaWO4. The rate determining step for reduction of CaWO4 could be diffusion of Si across product layer. The values of activation energies obtained by fitting kinetic data using Jander and Ginstling–Brounshtein model are as great as 379.93 kJ/mol and 387.16 kJ/mol respectively. The oxygen partial pressure during reduction has impact on the kinetics of reduction. The reduction was retarded by increase of oxygen partial pressure.https://doi.org/10.1515/htmp-2014-0161reduction kineticssolid-state reactiontungsten metallurgy82.20.pm
collection DOAJ
language English
format Article
sources DOAJ
author Shu Qifeng
Wu Jing
Chou Kuochih
spellingShingle Shu Qifeng
Wu Jing
Chou Kuochih
Kinetics Study on Reduction of CaWO4 by Si from 1423 K to 1523 K
High Temperature Materials and Processes
reduction kinetics
solid-state reaction
tungsten metallurgy
82.20.pm
author_facet Shu Qifeng
Wu Jing
Chou Kuochih
author_sort Shu Qifeng
title Kinetics Study on Reduction of CaWO4 by Si from 1423 K to 1523 K
title_short Kinetics Study on Reduction of CaWO4 by Si from 1423 K to 1523 K
title_full Kinetics Study on Reduction of CaWO4 by Si from 1423 K to 1523 K
title_fullStr Kinetics Study on Reduction of CaWO4 by Si from 1423 K to 1523 K
title_full_unstemmed Kinetics Study on Reduction of CaWO4 by Si from 1423 K to 1523 K
title_sort kinetics study on reduction of cawo4 by si from 1423 k to 1523 k
publisher De Gruyter
series High Temperature Materials and Processes
issn 0334-6455
2191-0324
publishDate 2015-12-01
description Investigation on reduction kinetics of scheelite(CaWO4) provides important fundamental knowledge to control and optimize process of Ferrotungsten manufacturing and direct reduction of scheelite in steelmaking. In this work, the isothermal reduction kinetics of CaWO4 powder by Si powder at 1,423 K, 1,473 K and 1,523 K, where all reactants and products are in solid state, was investigated by using X-ray diffraction quantitative analysis. Scanning electronic microscopy (SEM) attached with energy dispersive spectra (EDS) was also employed to investigate the microstructure of reaction interface. Both Jander model and Ginstling–Brounshtein model could describe kinetics of reduction of CaWO4 well, whereas 3D interfacial reaction model could not describe the kinetics of reduction of CaWO4. The rate determining step for reduction of CaWO4 could be diffusion of Si across product layer. The values of activation energies obtained by fitting kinetic data using Jander and Ginstling–Brounshtein model are as great as 379.93 kJ/mol and 387.16 kJ/mol respectively. The oxygen partial pressure during reduction has impact on the kinetics of reduction. The reduction was retarded by increase of oxygen partial pressure.
topic reduction kinetics
solid-state reaction
tungsten metallurgy
82.20.pm
url https://doi.org/10.1515/htmp-2014-0161
work_keys_str_mv AT shuqifeng kineticsstudyonreductionofcawo4bysifrom1423kto1523k
AT wujing kineticsstudyonreductionofcawo4bysifrom1423kto1523k
AT choukuochih kineticsstudyonreductionofcawo4bysifrom1423kto1523k
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