Orientation-dependent solid solution strengthening in zirconium: a nanoindentation study

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dc.contributor.author Lodh, Arijit
dc.contributor.author Pant, Prita
dc.contributor.author Kumar, Gulshan
dc.contributor.author Mani Krishna, K. V.
dc.contributor.author Tewari, Raghvendra
dc.contributor.author Samajdar, Indradev
dc.date.accessioned 2020-01-20T12:25:47Z
dc.date.available 2020-01-20T12:25:47Z
dc.date.issued 2019-12-17
dc.identifier.citation Lodh A, Pant P, Kumar G, et al., (2020) Orientation-dependent solid solution strengthening in zirconium: a nanoindentation study, Journal of Materials Science, Volume 55, Issue 10, pp. 4493-4503 en_UK
dc.identifier.issn 0022-2461
dc.identifier.uri https://doi.org/10.1007/s10853-019-04280-3
dc.identifier.uri https://dspace.lib.cranfield.ac.uk/handle/1826/14960
dc.description.abstract Orientation-dependent solid solution strengthening was explored through a combined microtexture plus nanoindentation study. Pure zirconium (6N purity crystal-bar Zr) and commercial Zircaloy-2 were investigated for comparison. Local mechanical properties were estimated through finite element (FE) simulations of the unloading part of the nanoindentation load–displacement response. Combinations of ‘averaging’ scheme and constitutive relationship were used to resolve uncertainty of FE-extracted mechanical properties. Comparing the two grades, non-basal oriented grains showed an overall hardening and increase in elastic modulus. In contrast, insignificant change was observed for basal (or near-basal) oriented grains. The strengthening of non-basal orientations appeared via elimination of the lowest hardness/stiffness values without a shift in the peak value. Such asymmetric development brought out the clear picture of orientation-dependent solid solution strengthening in zirconium. en_UK
dc.language.iso en en_UK
dc.publisher Springer en_UK
dc.rights Attribution 4.0 International *
dc.rights.uri http://creativecommons.org/licenses/by/4.0/ *
dc.title Orientation-dependent solid solution strengthening in zirconium: a nanoindentation study en_UK
dc.type Article en_UK


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