Low neutron cross-section FeCrVTiNi based high-entropy alloys: design, additive manufacturing and characterization

Bosheng Dong , Zhiyang Wang , Hanliang Zhu , Ondrej Muránsky , Zhijun Qiu , Chen Shen , Zengxi Pan , Huijun Li

Microstructures ›› 2022, Vol. 2 ›› Issue (1) : 2022003

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Microstructures ›› 2022, Vol. 2 ›› Issue (1) :2022003 DOI: 10.20517/microstructures.2021.09
Research Article

Low neutron cross-section FeCrVTiNi based high-entropy alloys: design, additive manufacturing and characterization

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Abstract

The development of high-entropy alloys (HEAs) based on the novel alloying concept of multi-principal components presents opportunities for achieving new materials with desired properties for increasingly demanding applications. In this study, a low neutron cross-section FeCrVTiNi-based HEA was developed for potential nuclear applications. A face-centred cubic (FCC) HEA with the nominal composition of FeCr0.4V0.3Ti0.2Ni1.3 is proposed based on the empirical thermodynamic models and the CALculation of PHAse diagrams (CALPHAD) calculation. Verifications of the predictions were performed, including the additive manufacturing of the proposal material and a range of microstructural characterizations and mechanical property tests. Consistent with the prediction, the as-fabricated HEA consists of a dominant FCC phase and minor Ni3Ti precipitates. Moreover, significant chemical segregation in the alloy, as predicted by the CALPHAD modelling, was observed experimentally in the produced dendritic microstructure showing the enrichment of Ni and Ti elements in the interdendritic regions and the segregation of Cr and V elements in the dendritic cores. Heterogenous mechanical properties, including microhardness and tensile strengths, were observed along the building direction of the additively manufactured HEA. The various solid solution strengthening effects, due to the chemical segregation (in particular Cr and V elements) during solidification, are identified as significant contributing factors to the observed mechanical heterogeneity. Our study provides useful knowledge for the design and additive manufacturing of compositionally complex HEAs and their composition-microstructure-mechanical property correlation.

Keywords

High-entropy alloys / materials design / additive manufacturing / microstructures / materials characterization

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Bosheng Dong, Zhiyang Wang, Hanliang Zhu, Ondrej Muránsky, Zhijun Qiu, Chen Shen, Zengxi Pan, Huijun Li. Low neutron cross-section FeCrVTiNi based high-entropy alloys: design, additive manufacturing and characterization. Microstructures, 2022, 2(1): 2022003 DOI:10.20517/microstructures.2021.09

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References

[1]

Raj B,Rao PV.Challenges in materials research for sustainable nuclear energy.MRS Bull2008;33:327-37

[2]

Zinkle SJ.Structural materials for fission & fusion energy.Mater Today2009;12:12-9

[3]

Busby JT.Overview of structural materials in water-cooled fission reactors. Structural alloys for nuclear energy applications. Elsevier; 2019. p. 1-22.

[4]

Konings RJM. Comprehensive nuclear materials. 2nd ed. Elsevier; 2020. p. 1-4653.

[5]

Volpe L,Scenini F.Correlation between grain boundary migration and stress corrosion cracking of alloy 600 in hydrogenated steam.Acta Mater2020;186:454-66

[6]

Yeh J,Lin S.Nanostructured high-entropy alloys with multiple principal elements: novel alloy design concepts and outcomes.Adv Eng Mater2004;6:299-303

[7]

Zhang Y,Tang Z.Microstructures and properties of high-entropy alloys.Prog Mater Sci2014;61:1-93

[8]

He J,Huang H.A precipitation-hardened high-entropy alloy with outstanding tensile properties.Acta Mater2016;102:187-96

[9]

Shen Q,Chen X.Fabrication of bulk Al-Co-Cr-Fe-Ni high-entropy alloy using combined cable wire arc additive manufacturing (CCW-AAM): microstructure and mechanical properties.J Mater Sci Mater Med2021;74:136-42

[10]

Zhang Y,Jin K.Influence of chemical disorder on energy dissipation and defect evolution in concentrated solid solution alloys.Nat Commun2015;6:8736 PMCID:PMC4640100

[11]

Zhang Y,Xue H.Influence of chemical disorder on energy dissipation and defect evolution in advanced alloys.J Mater Res2016;31:2363-75

[12]

Ullah MW,Velisa G.Effects of chemical alternation on damage accumulation in concentrated solid-solution alloys.Sci Rep2017;7:4146 PMCID:PMC5482846

[13]

Ayyagari A,Muskeri S.Low activation high entropy alloys for next generation nuclear applications.Materialia2018;4:99-103

[14]

King D,Humphry-baker S.High temperature, low neutron cross-section high-entropy alloys in the Nb-Ti-V-Zr system.Acta Mater2019;166:435-46

[15]

Kareer A,Li B,Armstrong D.Short communication: ‘low activation, refractory, high entropy alloys for nuclear applications’.J Nucl Mater2019;526:151744

[16]

Xia SQ,Yang TF,Zhang Y.Irradiation resistance in Al x CoCrFeNi high entropy alloys.JOM2015;67:2340-4

[17]

Available from: https://periodictable.com/. [Last accessed on 5 Jan 2022]

[18]

Guo S.Phase stability in high entropy alloys: formation of solid-solution phase or amorphous phase.Prog Nat Sci-Mater2011;21:433-46

[19]

King D,Mcgregor A.Predicting the formation and stability of single phase high-entropy alloys.Acta Mater2016;104:172-9

[20]

Dong B,Pan Z.On the development of pseudo-eutectic AlCoCrFeNi2.1 high entropy alloy using Powder-bed Arc Additive Manufacturing (PAAM) process.Mater Sci Eng A Struct Mater2021;802:140639

[21]

Keller T,Ghosh S.Application of finite element, phase-field, and CALPHAD-based methods to additive manufacturing of Ni-based superalloys.Acta Mater2017;139:244-53 PMCID:PMC5721357

[22]

Agrawal P,Nene S,Mcwilliams B.Excellent strength-ductility synergy in metastable high entropy alloy by laser powder bed additive manufacturing.Addit Manuf2020;32:101098

[23]

Zhang Y,Lin J,Liaw P.Solid-solution phase formation rules for multi-component alloys.Adv Eng Mater2008;10:534-8

[24]

Yang X.Prediction of high-entropy stabilized solid-solution in multi-component alloys.Mater Chem Phys2012;132:233-8

[25]

Guo S,Ng C.More than entropy in high-entropy alloys: forming solid solutions or amorphous phase.Intermetallics2013;41:96-103

[26]

Calvo-dahlborg M.Hume-rothery for HEA classification and self-organizing map for phases and properties prediction.J Alloys Compd2017;724:353-64

[27]

Pradeep K,Yao M,Springer H.Non-equiatomic high entropy alloys: approach towards rapid alloy screening and property-oriented design.Mater Sci Eng A Struct Mater2015;648:183-92

[28]

Ma D,Pradeep K,Springer H.Phase stability of non-equiatomic CoCrFeMnNi high entropy alloys.Acta Mater2015;98:288-96

[29]

Takeuchi A.Classification of bulk metallic glasses by atomic size difference, heat of mixing and period of constituent elements and its application to characterization of the main alloying element.Mater Trans2005;46:2817-29

[30]

Kong D,Liu R.Effect of remelting and annealing on the wear resistance of AlCoCrFeNiTi0.5 high entropy alloys.Intermetallics2019;114:106560

[31]

Zhang J,Wei Q.Microstructure and mechanical properties of RexNbMoTaW high-entropy alloys prepared by arc melting using metal powders.J Alloys Compd2020;827:154301

[32]

Wang H,Chen H.Effect of cyclic rapid thermal loadings on the microstructural evolution of a CrMnFeCoNi high-entropy alloy manufactured by selective laser melting.Acta Mater2020;196:609-25

[33]

Yao H,Hawk J,Chen M.Mechanical properties of refractory high-entropy alloys: experiments and modeling.J Alloys Compd2017;696:1139-50

[34]

Gurao N, Biswas K. In the quest of single phase multi-component multiprincipal high entropy alloys.J Alloys Compd2017;697:434-42

[35]

Ohsasa K,Shinmura T.Numerical modeling of the transient liquid phase bonding process of Ni using Ni-B-Cr ternary filler metal.JPE1999;20:199-206

[36]

Xu W,Wang W.Genetic design and characterization of novel ultra-high-strength stainless steels strengthened by Ni3Ti intermetallic nanoprecipitates.Acta Mater2010;58:3582-93

[37]

Barron P,Fellowes J,Dawson H.Towards V-based high-entropy alloys for nuclear fusion applications.Scr Mater2020;176:12-6

[38]

Esin V,Dadé M,Delfosse J.Combined synchrotron X-ray diffraction, dilatometry and electrical resistivity in situ study of phase transformations in a Ti2AlNb alloy.Mater Charact2020;169:110654

[39]

Wu B,Chen G.Mitigation of thermal distortion in wire arc additively manufactured Ti6Al4V part using active interpass cooling.Sci Technol Weld Joi2019;24:484-94

[40]

Wang F,Rush M.Morphology investigation on direct current pulsed gas tungsten arc welded additive layer manufactured Ti6Al4V alloy.Int J Adv Manuf Technol2011;57:597-603

[41]

Ma Y,Hoye N,Pan Z.Characterization of in-situ alloyed and additively manufactured titanium aluminides.Metall and Materi Trans B2014;45:2299-303

[42]

Qiu Z,Zhu H.Microstructure and mechanical properties of wire arc additively manufactured hastelloy C276 alloy.Mater Des2020;195:109007

[43]

Dong B,Shen C,Li H.Fabrication of copper-rich Cu-Al alloy using the wire-arc additive manufacturing process.Metall and Materi Trans B2017;48:3143-51

[44]

Haase C,Wilms MB,Hallstedt B.Combining thermodynamic modeling and 3D printing of elemental powder blends for high-throughput investigation of high-entropy alloys - towards rapid alloy screening and design.Mater Sci Eng A Struct Mater2017;688:180-9

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