Hydrogen reduction of lumpy Nchwaning ore in a fixed-bed reactor

Trygve Lindahl Schanche , Heiko Gaertner , Frida Vollan , Alok Sarkar , Casper van der Eijk

International Journal of Minerals, Metallurgy, and Materials ›› 2025, Vol. 32 ›› Issue (8) : 1871 -1880.

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International Journal of Minerals, Metallurgy, and Materials ›› 2025, Vol. 32 ›› Issue (8) : 1871 -1880. DOI: 10.1007/s12613-025-3125-7
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Hydrogen reduction of lumpy Nchwaning ore in a fixed-bed reactor

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Abstract

The application of hydrogen gas in the pre-reduction of manganese ore may replace fossil carbon consumption and reduce CO2 emissions in manganese ferroalloy production. The pre-reduction behavior of Nchwaning manganese ore was investigated using a fixed-bed reactor. The reduction rates at different temperatures and temperature programs were investigated, and the particles were sieved after reduction to measure the decrepitation. The reduction rate was measured by adding a tracer gas to the reducing gas and quantifying the off-gas. Samples with different particle-size distributions of the input material were reduced to investigate the effect of particle size on the reduction rate. Chemical analyses and X-ray diffraction were used to characterize the raw and reduced materials. The effects of particle size distribution and temperature on the oxygen removal rate were investigated. Manganese oxides were mostly reduced to MnO in the samples, whereas some iron oxides and carbonates remained. The degree of reduction was improved by using smaller particles and increasing the temperature.

Keywords

manganese ore / reduction / hydrogen / decrepitation / particle size

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Trygve Lindahl Schanche, Heiko Gaertner, Frida Vollan, Alok Sarkar, Casper van der Eijk. Hydrogen reduction of lumpy Nchwaning ore in a fixed-bed reactor. International Journal of Minerals, Metallurgy, and Materials, 2025, 32(8): 1871-1880 DOI:10.1007/s12613-025-3125-7

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References

[1]

DaviesJ, TangstadM, SchancheT L, du PreezS P. Prereduction of united manganese of kalahari ore in CO/CO2, H2/H2O, and H2 atmospheres. Metall. Mater. Trans. B, 2023, 542515

[2]

TangstadM, SchancheT, de PreezFFleuriaultC, SteenkampJD, GregurekD, WhiteJF, ReynoldsQG, MackeyPJ, HockadaySAC. Use of H2 in Mn-ferroalloy production. Advances in Pyrometallurgy, TMS Annual Meeting & Exhibition, 202335San Diego

[3]

LarssenT A, TangstadM. Effect of moisture, hydrogen, and water–gas shift reaction on the prereduction behavior of Comilog and Nchwaning manganese ores. Metall. Mater. Trans. B, 2022, 5342104

[4]

SchancheT L, TangstadM. Prereduction of Nchwaning ore in CO/CO2/H2 gas mixtures. Minerals, 2021, 11101097

[5]

NgoyD, SukhomlinovD, TangstadM. Pre-reduction behaviour of manganese ores in H2 and CO containing gases. ISIJ Int., 2020, 60112325

[6]

van der EijkC, DalakerH, SafarianJ. Possibilities and limitations of the use of hydrogen in different metallurgical sectors. Mater. Proc., 2023, 15163

[7]

AkhmetovA S, EremeevaZ V, MakhambetovE N. Application of hydrogen in production of ferroalloys. Metallurgist, 2024, 67111621

[8]

KeroI T, DalakerH, Sende OsenK, RingdalenE. Some carbon-free technologies for manganese Ferroalloy production. Proceedings of the 16th International Ferro-Alloys Congress (INFACON XVI), 20219Trondheim

[9]

SafarianJ. A sustainable process to produce manganese and its alloys through hydrogen and aluminothermic reduction. Processes, 2022, 10127

[10]

LarssenT A, SenkD, TangstadM. Reduction of manganese ores in CO–CO2 atmospheres. Metall. Mater. Trans. B, 2020, 521363

[11]

A. Cheraghi, H. Becker, H. Eftekhari, H. Yoozbashizadeh, and J. Safarian, Characterization and calcination behavior of a low-grade manganese ore, Mater. Today Commun., 25(2020), art. No. 101382.

[12]

FahimM S, El FaramawyH, AhmedA M, GhaliS N, KandilA E H T. Characterization of Egyptian manganese ores for production of high carbon ferromanganese. J. Min. Mater. Charact. Eng., 2013, 1268

[13]

SarkarA, SchancheT L, SafarianJ. Isothermal pre-reduction behavior of Nchwaning manganese ore in H2 atmosphere. Mater. Proc., 2023, 15158

[14]

M. S. Ernst, M. Tangstad, and S. P. Du Preez, Pre-reduction of Nchwaning manganese ore in CO/CO2, H2/H2O, and H2 atmospheres, Miner. Eng., 216(2024), art. No. 108854.

[15]

BergK L, OlsenS E. Kinetics of manganese ore reduction by carbon monoxide. Metall. Mater. Trans. B, 2000, 313477

[16]

LarssenT A, SenkD, TangstadM. Reaction rate analysis of manganese ore prereduction in CO–CO2 atmosphere. Metall. Mater. Trans. B, 2021, 5242087

[17]

GaoY B, KimH G, SohnH Y. Kinetics of pre-reduction of manganese ore by CO. Trans. Inst. Min. Metall., Sect. C, 2012, 1212109

[18]

MukonoT, ReiersenH S, SchancheT L, WallinM, TangstadM. Prereduction behavior of manganese ores with solid carbon and in CO/CO2 gas atmosphere. Metall. Mater. Trans. B, 2022, 5353292

[19]

KononovR, OstrovskiO, GangulyS. Carbothermal reduction of manganese oxide in different gas atmospheres. Metall. Mater. Trans. B, 2008, 395662

[20]

SarkarA, SchancheT L, WallinM, SafarianJ. Evaluating the reaction kinetics on the H2 reduction of a manganese ore at elevated temperatures. J. Sustain. Metall., 2024, 1042085

[21]

BarnerH E, MantellC L. Kinetics of hydrogen reduction of manganese dioxide. Ind. Eng. Chem. Process Des. Dev., 1968, 72285

[22]

De BruijnT J W, SoerawidjajaT H, De JongtW A, Van Den BergP J. Modelling of the reduction of manganese oxides with hydrogen. Chem. Eng. Sci., 1980, 3571591

[23]

WangRF, YuanS, LiYJ, GaoP, LiR. Hydrogen-based mineral phase transformation mechanism investigation of pyrolusite ore. Int. J. Miner. Metall. Mater., 2024, 31112445

[24]

CanaguierV, SchancheT L, MukonoT, RingdalenE. Kinetic modelling of FeMn pilot experiments: investigating the effect of charge type and pre-treatment. Proceedings of the 62nd Conference of Metallurgists, COM 2023, 2023651Toronto

[25]

TurkovaK, SlizovskiyD, TangstadM. CO reactivity and porosity of manganese materials. ISIJ Int., 2014, 5461204

[26]

ZakiM I, HasanM A, PasupuletyL, KumariK. Thermochemistry of manganese oxides in reactive gas atmospheres: probing redox compositions in the decomposition course MnO2→MnO. Thermochim. Acta, 1997, 3032171

[27]

El-GawadH H A, AhmedM M, El-HussinyN A, ShalabiM E H. Reduction of low grade Egyptian manganese ore via hydrogen at 800°C–950°C. Open Access Library Journal, 2014, 141

[28]

El-HussinyN, El-GawadH H, FmM, ShalabiM. Pelletization and reduction of Egyptian low grade manganese ore pellets via hydrogen at 750°C–950°C. Int. J. Sci. Eng. Res., 2015, 65339

[29]

FariaG L, TenórioJ A S, JannottiN, AraújoF G d S. Disintegration on heating of a Brazilian manganese lump ore. Int. J. Miner. Process., 2013, 124132

[30]

MoholwaM S, SteenkampJ D, RuttoH L. Fines generation from South African manganese ores during preheating in a rotary kiln. J. S. Afr. Inst. Min. Metall., 2023, 122111

[31]

BiswasA, DasP K, SinghV. Investigation of the decrepitation phenomenon of polymorphic materials: a theoretical and experimental study. Powder Technol., 2016, 294119

[32]

SorensenB, GaalS, RingdalenE, TangstadM, KononovR, OstrovskiO. Phase compositions of manganese ores and their change in the process of calcination. Int. J. Miner. Process., 2010, 943101

[33]

CoetseeT. The role of manganese ore reduction morphology development in setting reduction mechanisms. Miner. Eng., 2019, 137217

[34]

LiuBB, ZhangYB, WangJ, et al.. A further investigation on the MnO2–Fe2O3 system roasted under CO–CO2 atmosphere. Adv. Powder Technol., 2019, 302302

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