Small-scale fracture mechanical investigations on grain boundary doped ultrafine-grained tungsten

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Small-scale fracture mechanical investigations on grain boundary doped ultrafine-grained tungsten. / Wurmshuber, Michael; Alfreider, Markus; Wurster, Stefan et al.
In: Acta Materialia, Vol. 250.2023, No. 15 May, 118878, 28.03.2023.

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Wurmshuber M, Alfreider M, Wurster S, Burtscher M, Pippan R, Kiener D. Small-scale fracture mechanical investigations on grain boundary doped ultrafine-grained tungsten. Acta Materialia. 2023 Mar 28;250.2023(15 May):118878. Epub 2023 Mar 28. doi: 10.1016/j.actamat.2023.118878

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@article{05a0a309579248f49f446e4871ae7eec,
title = "Small-scale fracture mechanical investigations on grain boundary doped ultrafine-grained tungsten",
abstract = "The inherent brittleness of the refractory metal tungsten represents a major challenge for its application as divertor material in future nuclear fusion reactors. Grain refinement to the ultrafine-grained regime is a promising strategy to increase the fracture toughness of W, but it also promotes intercrystalline crack growth. Therefore, the strengthening of grain boundary cohesion in W is of great importance. In this work, grain boundary doping with B and Hf, two elements that were identified in previous work to increase bending strength and ductility, is applied to ultrafine-grained W. The fracture toughness is measured utilizing small-scale testing techniques. Fracture mechanical experiments on the microscale provide a plethora of challenges to correctly assess size-independent toughness values, which are presented and discussed within this work. It was found that the toughness of W can be under- and overestimated, depending on the sample dimensions and plastic zone size. When assessing the valid and size-independent fracture toughness measured for the differently doped W specimen, doping with the strengthening element B maintained the already remarkably high toughness of the undoped ultrafine-grained W of around 20 MPa√m. The samples doped with Hf even improved the fracture toughness to values of up to 27 MPa√m. Hence, the effects of GB doping on the fracture toughness of ultrafine-grained W are explored, while simultaneously the influence of sample dimensions on measured fracture toughness is discussed. These insights are expected to have a great impact on the development of superior materials for use in harsh environments, as well as the application of small-scale fracture mechanical experiments, as used, for example, in the assessment of control samples in nuclear technology.",
author = "Michael Wurmshuber and Markus Alfreider and Stefan Wurster and Michael Burtscher and Reinhard Pippan and Daniel Kiener",
note = "Publisher Copyright: {\textcopyright} 2023 The Author(s)",
year = "2023",
month = mar,
day = "28",
doi = "10.1016/j.actamat.2023.118878",
language = "English",
volume = "250.2023",
journal = "Acta Materialia",
issn = "1359-6454",
publisher = "Acta Materialia Inc",
number = "15 May",

}

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TY - JOUR

T1 - Small-scale fracture mechanical investigations on grain boundary doped ultrafine-grained tungsten

AU - Wurmshuber, Michael

AU - Alfreider, Markus

AU - Wurster, Stefan

AU - Burtscher, Michael

AU - Pippan, Reinhard

AU - Kiener, Daniel

N1 - Publisher Copyright: © 2023 The Author(s)

PY - 2023/3/28

Y1 - 2023/3/28

N2 - The inherent brittleness of the refractory metal tungsten represents a major challenge for its application as divertor material in future nuclear fusion reactors. Grain refinement to the ultrafine-grained regime is a promising strategy to increase the fracture toughness of W, but it also promotes intercrystalline crack growth. Therefore, the strengthening of grain boundary cohesion in W is of great importance. In this work, grain boundary doping with B and Hf, two elements that were identified in previous work to increase bending strength and ductility, is applied to ultrafine-grained W. The fracture toughness is measured utilizing small-scale testing techniques. Fracture mechanical experiments on the microscale provide a plethora of challenges to correctly assess size-independent toughness values, which are presented and discussed within this work. It was found that the toughness of W can be under- and overestimated, depending on the sample dimensions and plastic zone size. When assessing the valid and size-independent fracture toughness measured for the differently doped W specimen, doping with the strengthening element B maintained the already remarkably high toughness of the undoped ultrafine-grained W of around 20 MPa√m. The samples doped with Hf even improved the fracture toughness to values of up to 27 MPa√m. Hence, the effects of GB doping on the fracture toughness of ultrafine-grained W are explored, while simultaneously the influence of sample dimensions on measured fracture toughness is discussed. These insights are expected to have a great impact on the development of superior materials for use in harsh environments, as well as the application of small-scale fracture mechanical experiments, as used, for example, in the assessment of control samples in nuclear technology.

AB - The inherent brittleness of the refractory metal tungsten represents a major challenge for its application as divertor material in future nuclear fusion reactors. Grain refinement to the ultrafine-grained regime is a promising strategy to increase the fracture toughness of W, but it also promotes intercrystalline crack growth. Therefore, the strengthening of grain boundary cohesion in W is of great importance. In this work, grain boundary doping with B and Hf, two elements that were identified in previous work to increase bending strength and ductility, is applied to ultrafine-grained W. The fracture toughness is measured utilizing small-scale testing techniques. Fracture mechanical experiments on the microscale provide a plethora of challenges to correctly assess size-independent toughness values, which are presented and discussed within this work. It was found that the toughness of W can be under- and overestimated, depending on the sample dimensions and plastic zone size. When assessing the valid and size-independent fracture toughness measured for the differently doped W specimen, doping with the strengthening element B maintained the already remarkably high toughness of the undoped ultrafine-grained W of around 20 MPa√m. The samples doped with Hf even improved the fracture toughness to values of up to 27 MPa√m. Hence, the effects of GB doping on the fracture toughness of ultrafine-grained W are explored, while simultaneously the influence of sample dimensions on measured fracture toughness is discussed. These insights are expected to have a great impact on the development of superior materials for use in harsh environments, as well as the application of small-scale fracture mechanical experiments, as used, for example, in the assessment of control samples in nuclear technology.

UR - https://pureadmin.unileoben.ac.at/portal/en/publications/smallscale-fracture-mechanical-investigations-on-grain-boundary-doped-ultrafinegrained-tungsten(05a0a309-5792-48f4-9f44-6e4871ae7eec).html

UR - http://www.scopus.com/inward/record.url?scp=85151025355&partnerID=8YFLogxK

U2 - 10.1016/j.actamat.2023.118878

DO - 10.1016/j.actamat.2023.118878

M3 - Article

VL - 250.2023

JO - Acta Materialia

JF - Acta Materialia

SN - 1359-6454

IS - 15 May

M1 - 118878

ER -