Hydrogen-based direct reduction of iron oxide at 700°C: Heterogeneity at pellet and microstructure scales

Yan Ma , Isnaldi R. Souza Filho , Xue Zhang , Supriya Nandy , Pere Barriobero-Vila , Guillermo Requena , Dirk Vogel , Michael Rohwerder , Dirk Ponge , Hauke Springer , Dierk Raabe

International Journal of Minerals, Metallurgy, and Materials ›› 2022, Vol. 29 ›› Issue (10) : 1901 -1907.

PDF
International Journal of Minerals, Metallurgy, and Materials ›› 2022, Vol. 29 ›› Issue (10) : 1901 -1907. DOI: 10.1007/s12613-022-2440-5
Article

Hydrogen-based direct reduction of iron oxide at 700°C: Heterogeneity at pellet and microstructure scales

Author information +
History +
PDF

Abstract

Steel production causes a third of all industrial CO2 emissions due to the use of carbon-based substances as reductants for iron ores, making it a key driver of global warming. Therefore, research efforts aim to replace these reductants with sustainably produced hydrogen. Hydrogen-based direct reduction (HyDR) is an attractive processing technology, given that direct reduction (DR) furnaces are routinely operated in the steel industry but with CH4 or CO as reductants. Hydrogen diffuses considerably faster through shaft-furnace pellet agglomerates than carbon-based reductants. However, the net reduction kinetics in HyDR remains extremely sluggish for high-quantity steel production, and the hydrogen consumption exceeds the stoichiometrically required amount substantially. Thus, the present study focused on the improved understanding of the influence of spatial gradients, morphology, and internal microstructures of ore pellets on reduction efficiency and metallization during HyDR. For this purpose, commercial DR pellets were investigated using synchrotron high-energy X-ray diffraction and electron microscopy in conjunction with electron backscatter diffraction and chemical probing. Revealing the interplay of different phases with internal interfaces, free surfaces, and associated nucleation and growth mechanisms provides a basis for developing tailored ore pellets that are highly suited for a fast and efficient HyDR.

Keywords

hydrogen-based direct reduction / iron oxide / microstructure / spatial gradient / metallization

Cite this article

Download citation ▾
Yan Ma, Isnaldi R. Souza Filho, Xue Zhang, Supriya Nandy, Pere Barriobero-Vila, Guillermo Requena, Dirk Vogel, Michael Rohwerder, Dirk Ponge, Hauke Springer, Dierk Raabe. Hydrogen-based direct reduction of iron oxide at 700°C: Heterogeneity at pellet and microstructure scales. International Journal of Minerals, Metallurgy, and Materials, 2022, 29(10): 1901-1907 DOI:10.1007/s12613-022-2440-5

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Raabe D, Tasan CC, Olivetti EA. Strategies for improving the sustainability of structural metals. Nature, 2019, 575(7781): 64.

[2]

World Steel Association, World Steel in Figures 2021 [2022-01-24]. https://worldsteel.org/wp-content/uploads/2021-World-Steel-in-Figures.pdf

[3]

Flores-Granobles M, Saeys M. Minimizing CO2 emissions with renewable energy: A comparative study of emerging technologies in the steel industry. Energy Environ. Sci., 2020, 13(7): 1923.

[4]

Patisson F, Mirgaux O. Hydrogen ironmaking: How it works. Metals, 2020, 10(7): 922.

[5]

Jaimes W, Maroufi S. Sustainability in steelmaking. Curr. Opin. Green Sustainable Chem., 2020, 24, 42.

[6]

Pei M, Petäjäniemi M, Regnell A, Wijk O. Toward a fossil free future with HYBRIT: Development of iron and steel-making technology in Sweden and Finland. Metals, 2020, 10(7): 972.

[7]

Lechtenböhmer S, Schneider C, Yetano Roche M, Höller S. Re-industrialisation and low-carbon economy—Can they go together? Results from stakeholder-based scenarios for energy-intensive industries in the German state of north Rhine Westphalia. Energies, 2015, 8(10): 11404.

[8]

Fischedick M, Marzinkowski J, Winzer P, Weigel M. Techno-economic evaluation of innovative steel production technologies. J. Clean. Prod., 2014, 84, 563.

[9]

Kim SH, Zhang X, Ma Y, et al. Influence of microstructure and atomic-scale chemistry on the direct reduction of iron ore with hydrogen at 700°C. Acta Mater., 2021, 212, 116933.

[10]

Souza Filho IR, Ma Y, Kulse M, et al. Sustainable steel through hydrogen plasma reduction of iron ore: Process, kinetics, microstructure, chemistry. Acta Mater., 2021, 213, 116971.

[11]

Spreitzer D, Schenk J. Reduction of iron oxides with hydrogen—A review. Steel Res. Int., 2019, 90(10): 1900108.

[12]

Ma Y, Souza Filho IR, Bai Y, et al. Hierarchical nature of hydrogen-based direct reduction of iron oxides. Scripta Mater., 2022, 213, 114571.

[13]

Turkdogan ET, Vinters JV. Gaseous reduction of iron oxides: Part I. Reduction of hematite in hydrogen. Metall. Mater. Trans. B, 1971, 2(11): 3175.

[14]

Sastri MVC, Viswanath RP, Viswanathan B. Studies on the reduction of iron oxide with hydrogen. Int. J. Hydrogen Energy, 1982, 7(12): 951.

[15]

Lin HY, Chen YW, Li C. The mechanism of reduction of iron oxide by hydrogen. Thermochim. Acta, 2003, 400(1–2): 61.

[16]

Moukassi M, Steinmetz P, Dupre B, Gleitzer C. A study of the mechanism of reduction with hydrogen of pure wustite single crystals. Metall. Trans. B, 1983, 14(1): 125.

[17]

Tiernan MJ, Barnes PA, Parkes GMB. Reduction of iron oxide catalysts: The investigation of kinetic parameters using rate perturbation and linear heating thermoanalytical techniques. J. Phys. Chem. B, 2001, 105(1): 220.

[18]

Zieliński J, Zglinicka I, Znak L, Kaszkur Z. Reduction of Fe2O3 with hydrogen. Appl. Catal. A Gen., 2010, 381(1–2): 191.

[19]

Pineau A, Kanari N, Gaballah I. Kinetics of reduction of iron oxides by H2: Part I: Low temperature reduction of hematite. Thermochim. Acta, 2006, 447(1): 89.

[20]

Pineau A, Kanari N, Gaballah I. Kinetics of reduction of iron oxides by H2: Part II: Low temperature reduction of hematite. Thermochim. Acta, 2007, 456(2): 75.

[21]

Zuo HB, Wang C, Dong JJ, Jiao KX, Xu RS. Reduction kinetics of iron oxide pellets with H2 and CO mixtures. Int. J. Miner. Metall. Mater., 2015, 22(7): 688.

[22]

Tsay QT, Ray WH, Szekely J. The modeling of hematite reduction with hydrogen plus carbon monoxide mixtures: Part I. The behavior of single pellets. AIChE J., 1976, 22(6): 1064.

[23]

Kawasaki E, Sanscrainte J, Walsh TJ. Kinetics of reduction of iron oxide with carbon monoxide and hydrogen. AIChE J., 1962, 8(1): 48.

[24]

Piotrowski K, Mondal K, Lorethova H, Stonawski L, Szymański T, Wiltowski T. Effect of gas composition on the kinetics of iron oxide reduction in a hydrogen production process. Int. J. Hydrogen Energy, 2005, 30(15): 1543.

[25]

Piotrowski K, Mondal K, Wiltowski T, Dydo P, Rizeg G. Topochemical approach of kinetics of the reduction of hematite to wüstite. Chem. Eng. J., 2007, 131(1–3): 73.

[26]

H. Hamadeh, O. Mirgaux, and F. Patisson, Detailed modeling of the direct reduction of iron ore in a shaft furnace, Materials (Basel), 11(2018), No. 10, art. No. 1865.

[27]

Bonalde A, Henriquez A, Manrique M. Kinetic analysis of the iron oxide reduction using hydrogen-carbon monoxide mixtures as reducing agent. ISIJ Int., 2005, 45(9): 1255.

[28]

Auinger M, Vogel D, Vogel A, Spiegel M, Rohwerder M. A novel laboratory set-up for investigating surface and interface reactions during short term annealing cycles at high temperatures. Rev. Sci. Instrum., 2013, 84(8): 085108.

[29]

Hammersley AP. FIT2D: A multi-purpose data reduction, analysis and visualization program. J. Appl. Crystallogr., 2016, 49(2): 646.

[30]

Lutterotti L. Total pattern fitting for the combined size-strainstress-texture determination in thin film diffraction. Nucl. Instrum. Methods Phys. Res., Sect. B, 2010, 268(3–4): 334.

[31]

Ranzani da Costa A, Wagner D, Patisson F. Modelling a new, low CO2 emissions, hydrogen steelmaking process. J. Clean. Prod., 2013, 46, 27.

[32]

D. Wagner, O. Devisme, F. Patisson, and D. Ablitzer, A laboratory study of the reduction of iron oxides by hydrogen, [in] F. Kongoli and R.G. Reddy, eds., Proceedings of Sohn International Symposium, San Diego, 2006, p. 111.

[33]

Mao WC, Sloof WG. Reduction kinetics of wüstite scale on pure iron and steel sheets in Ar and H2 gas mixture. Metall. Mater. Trans. B, 2017, 48(5): 2707.

[34]

Bai Y, Mianroodi J R, Ma Y, da Silva AK, Svendsen B, Raabe D. Chemo-mechanical phase-field modeling of iron oxide reduction with hydrogen. Acta Mater., 2022, 231, 117899.

AI Summary AI Mindmap
PDF

161

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/