Role of initial stored energy on hydrogen microalloying of ZrCoAl(Nb) bulk metallic glasses
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Date
2021
Journal Title
Journal ISSN
Volume Title
Publisher
Springer Science and Business Media Deutschland GmbH
Abstract
In this paper, the role of primary stored energy and structural heterogeneity on the subsequent effects of hydrogen microalloying in glassy alloys was studied. For this purpose, two bulk metallic glasses with different chemical compositions and initial stored energy, i.e. Zr<inf>60</inf>Co<inf>30</inf>Al<inf>10</inf> and Zr<inf>55</inf>Co<inf>30</inf>Al<inf>10</inf>Nb<inf>5</inf>, were fabricated in a hydrogen-induced environment. Dynamic mechanical analysis and nanoindentation tests were carried out to evaluate relaxation behavior and mechanical properties of bulk metallic glasses, respectively. The nanoindentation results indicated declining serrations in load–displacement curves of hydrogen-affected samples. This event was related to the annihilation of localized deformation in hydrogen-affected samples under the external load. Moreover, the dynamic mechanical analysis showed that the hydrogen microalloying process improved the plasticity behavior of metallic glasses by activating fast ?? relaxation. Finally, the results unveiled that the higher initial structural heterogeneity and stored energy in the bulk metallic glass with the alloying composition of Zr<inf>55</inf>Co<inf>30</inf>Al<inf>10</inf>Nb<inf>5</inf> led to the improvement of microalloying effects on the corresponding properties. © 2021, The Author(s), under exclusive licence to Springer-Verlag GmbH, DE part of Springer Nature.
Description
Keywords
Aluminum alloys, Cobalt alloys, Dynamics, Glass, Metals, Microalloying, Nanoindentation, Niobium alloys, Ternary alloys, Zircaloy, Alloying compositions, Bulk metallic glass, Chemical compositions, Localized deformations, Microalloying effects, Nanoindentation tests, Relaxation behaviors, Structural heterogeneity, Metallic glass
Citation
Applied Physics A: Materials Science and Processing, 2021, 127, 1, pp. -
