Influences of oxide content and sintering temperature on microstructures and mechanical properties of intragranular-oxide strengthened iron alloys prepared by spark plasma sintering

Deyin Zhang , Xu Hao , Baorui Jia , Haoyang Wu , Lin Zhang , Mingli Qin , Xuanhui Qu

International Journal of Minerals, Metallurgy, and Materials ›› 2023, Vol. 30 ›› Issue (9) : 1748 -1755.

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International Journal of Minerals, Metallurgy, and Materials ›› 2023, Vol. 30 ›› Issue (9) : 1748 -1755. DOI: 10.1007/s12613-023-2631-8
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Influences of oxide content and sintering temperature on microstructures and mechanical properties of intragranular-oxide strengthened iron alloys prepared by spark plasma sintering

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Abstract

How to increase strength without sacrificing ductility has been developed as a key goal in the manufacture of high-performance metals or alloys. Herein, the double-nanophase intragranular yttrium oxide dispersion strengthened iron alloy with high strength and appreciable ductility was fabricated by solution combustion route and subsequent spark plasma sintering, and the influences of yttrium oxide content and sintering temperature on microstructures and mechanical properties were investigated. The results show at the same sintering temperature, with the increase of yttrium oxide content, the relative density of the sintered alloy decreases and the strength increases. For Fe–2wt%Y2O3 alloy, as the sintering temperature increases gradually, the compressive strength decreases, while the strain-to-failure increases. The Fe–2wt%Y2O3 alloy with 15.5 nm Y2O3 particles uniformly distributed into the 147.5 nm iron grain interior sintered at 650°C presents a high ultimate compressive strength of 1.86 GPa and large strain-to-failure of 29%. The grain boundary strengthening and intragranular second-phase particle dispersion strengthening are the main dominant mechanisms to enhance the mechanical properties of the alloy.

Keywords

oxide dispersion strengthening / spark plasma sintering / microstructure and properties / strengthening mechanism

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Deyin Zhang, Xu Hao, Baorui Jia, Haoyang Wu, Lin Zhang, Mingli Qin, Xuanhui Qu. Influences of oxide content and sintering temperature on microstructures and mechanical properties of intragranular-oxide strengthened iron alloys prepared by spark plasma sintering. International Journal of Minerals, Metallurgy, and Materials, 2023, 30(9): 1748-1755 DOI:10.1007/s12613-023-2631-8

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References

[1]

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

[2]

Li XY, Lu K. Improving sustainability with simpler alloys. Science, 2019, 364(6442): 733.

[3]

Lei ZF, Liu XJ, Wu Y, et al. Enhanced strength and ductility in a high-entropy alloy via ordered oxygen complexes. Nature, 2018, 563(7732): 546.

[4]

J. Bauer, M. Sala-Casanovas, M. Amiri, and L. Valdevit, Nanoarchitected metal/ceramic interpenetrating phase composites, Sci. Adv., 8(2022), No. 33, art. No. eabo3080.

[5]

L.P. Xie, W.Y. Sun, J.L. Wang, M.H. Chen, and F.H. Wang, Improving strength and oxidation resistance of a Ni-based ODS alloy via in-situ solid-state reaction, Corros. Sci., 197(2022), art. No. 110078.

[6]

E.M.O. Lahcen, M.M.Á. Alcázar, and C.P. Almeida, New high strength ODS Eurofer steel processed by mechanical alloying, Mater. Sci. Eng. A, 817(2021), art. No. 141288.

[7]

L.Y. Yao, Y.J. Huang, Y.M. Gao, et al., Hot deformation behavior of nanostructural oxide dispersion-strengthened (ODS) Mo alloy, Int. J. Refract. Met. Hard Mater, 107(2022), art. No. 105881.

[8]

Oono N, Ukai S, Kondo S, Hashitomi O, Kimura A. Irradiation effects in oxide dispersion strengthened (ODS) Ni-base alloys for Gen. IV nuclear reactors. J. Nucl. Mater., 2015, 465, 835.

[9]

F.N. Xiao, T. Barriere, G. Cheng, et al., Extremely uniform nanosized oxide particles dispersion strengthened tungsten alloy with high tensile and compressive strengths fabricated involving liquid-liquid method, J. Alloys Compd., 878(2021), art. No. 160335.

[10]

Zhou JH, Shen YF, Jia N. Strengthening mechanisms of reduced activation ferritic/martensitic steels: A review. Int. J. Miner. Metall. Mater., 2021, 28(3): 335.

[11]

A. Arora and S. Mula, Phase evolution characteristics, thermal stability, and strengthening processes of Fe–Ni based ODS invar steel produced by mechanical alloying and spark plasma sintering, Mater. Sci. Eng. A, 856(2022), art. No. 143972.

[12]

P. Song, K. Yabuuchi, and P. Spätig, Insights into hardening, plastically deformed zone and geometrically necessary dislocations of two ion-irradiated FeCrAl(Zr)–ODS ferritic steels: A combined experimental and simulation study, Acta Mater., 234(2022), art. No. 117991.

[13]

Parida PK, Dasgupta A, Srihari V, et al. Structural investigations of Y2O3 dispersoids during mechanical milling and high-temperature annealing of Fe–15Y2O3xTi (x = 0–15) model ODS alloys. Adv. Powder Technol., 2020, 31(4): 1665.

[14]

Brocq M, Radiguet B, Le Breton JM, Cuvilly F, Pareige P, Legendre F. Nanoscale characterisation and clustering mechanism in an Fe–Y2O3 model ODS alloy processed by reactive ball milling and annealing. Acta Mater., 2010, 58(5): 1806.

[15]

Mairov A, Frazer D, Hosemann P, Sridharan K. Helium irradiation of Y2O3–Fe bilayer system. Scripta Mater., 2019, 162, 156.

[16]

Li RP, Gong LJ, Lin JG, Lin JX, Wang K, Shi ZM. Structural evolution of Fe–Y2O3–Ti powder during ball-milling and thermal treatment. Ceram. Int., 2019, 45(16): 20011.

[17]

Wu SJ, Li J, Li CJ, Li YY, Xiong LY, Liu S. Preliminary study on the fabrication of 14Cr-ODS FeCrAl alloy by powder forging. J. Mater. Sci. Technol., 2021, 83, 49.

[18]

Hirata A, Fujita T, Wen YR, Schneibel JH, Liu CT, Chen MW. Atomic structure of nanoclusters in oxide-dispersion-strengthened steels. Nat. Mater., 2011, 10(12): 922.

[19]

Pasebani S, Dutt AK, Burns J, Charit I, Mishra RS. Oxide dispersion strengthened nickel based alloys via spark plasma sintering. Mater. Sci. Eng. A, 2015, 630, 155.

[20]

Hilger I, Bergner F, Weißgärber T. Bimodal grain size distribution of nanostructured ferritic ODS Fe-Cr alloys. J. Am. Ceram. Soc., 2015, 98(11): 3576.

[21]

J. Fu, T.P. Davis, A. Kumar, I.M. Richardson, and M.J.M. Hermans, Characterisation of the influence of vanadium and tantalum on yttrium-based nano-oxides in ODS Eurofer steel, Mater. Charact., 175(2021), art. No. 111072.

[22]

Z. Dong, Z.Q. Ma, J. Dong, et al., The simultaneous improvements of strength and ductility in W–Y2O3 alloy obtained via an alkaline hydrothermal method and subsequent low temperature sintering, Mater. Sci. Eng. A, 784(2020), art. No. 139329.

[23]

Liu G, Zhang GJ, Jiang F, et al. Nanostructured high-strength molybdenum alloys with unprecedented tensile ductility. Nat. Mater., 2013, 12(4): 344.

[24]

Zhang DY, Wu T, Jia BR, et al. Properties of intragranularoxide-strengthened Fe alloys fabricated by a versatile facile and scalable route. Powder Technol., 2021, 384, 9.

[25]

Huang L, Jiang L, Topping TD, et al. In situ oxide dispersion strengthened tungsten alloys with high compressive strength and high strain-to-failure. Acta Mater., 2017, 122, 19.

[26]

Mihalache V, Mercioniu I, Velea A, Palade P. Effect of the process control agent in the ball-milled powders and SPS-consolidation temperature on the grain refinement, density and Vickers hardness of Fe14Cr ODS ferritic alloys. Powder Technol., 2019, 347, 103.

[27]

A. Meza, E. Macía, P. Chekhonin, et al., The effect of composition and microstructure on the creep behaviour of 14 Cr ODS steels consolidated by SPS, Mater. Sci. Eng. A, 849(2022), art. No. 143441.

[28]

Qin ML, Zhang DY, Chen G, et al. A double-nanophase intragranular-oxide-strengthened iron alloy with high strength and remarkable ductility. Metall. Mater. Trans. A, 2019, 50(3): 1103.

[29]

Besson J, Evans AG. The effect of reinforcements on the densification of a metal powder. Acta Metall. Mater., 1992, 40(9): 2247.

[30]

Srinivasarao B, Oh-ishi K, Ohkubo T, Hono K. Bimodally grained high-strength Fe fabricated by mechanical alloying and spark plasma sintering. Acta Mater., 2009, 57(11): 3277.

[31]

Vijay R, Nagini M, Joardar J, Ramakrishna M, Reddy AV, Sundararajan G. Strengthening mechanisms in mechanically milled oxide-dispersed iron powders. Metall. Mater. Trans. A, 2013, 44(3): 1611.

[32]

Smith CS. Grains, phases, and interfaces: An interpretation of microstructure. Trans. Metall. Soc. AIME, 1948, 175, 15.

[33]

M.L. Qin, J.J. Yang, Z. Chen, et al., Preparation of intragranular-oxide-strengthened ultrafine-grained tungsten via low-temperature pressureless sintering, Mater. Sci. Eng. A, 774(2020), art. No. 138878.

[34]

Jiang L, Wen HM, Yang H, et al. Influence of length-scales on spatial distribution and interfacial characteristics of B4C in a nanostructured Al matrix. Acta Mater., 2015, 89, 327.

[35]

Gottstein G, Shvindlerman LS. Theory of grain boundary motion in the presence of mobile particles. Acta Metall. Mater., 1993, 41(11): 3267.

[36]

Chen Z, Qin ML, Yang JJ, Zhang L, Jia BR, Qu XH. Thermal stability and grain growth kinetics of ultrafine-grained W with various amount of La2O3 addition. Metall. Mater. Trans. A, 2020, 51(8): 4113.

[37]

Vijay R, Nagini M, Sarma SS, Ramakrishna M, Reddy AV, Sundararajan G. Structure and properties of nano-scale oxide-dispersed iron. Metall. Mater. Trans. A, 2014, 45(2): 777.

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