Abstract
Numerical finite element method (FEM) calculation results reveal that the effective strain differs between the ductile Zr-based bulk metallic glass and brittle Hf-based bulk metallic glass (BMG) during rolling at room temperature. The current results demonstrated that the deformation mechanism of ductile Zr-based bulk metallic glass can be explained by perceptibility of multiple shear bands formation, however, the deformation mechanism of brittle Hf-based bulk metallic glass is represented by uniformly distribution of effective strain through overall specimen rather than localized into shear band. The variation of stress and the distribution of effective strain change significantly near the surface region of a Hf-based bulk metallic glass plate with increasing number of rolling passes. Under elasto-plastic deformation by cold rolling, the brittle Hf-based BMG has a thickness strain (εt) of −0.012, and the neutral effective strain (εeff) is 0.011 at the thickness direction, respectively. We present experimental confirmation that when the applied effective strain can be adjusted to below 1.1% during elasto-plastic deformation then even the brittle as-cast Hf-based BMG can be deformed up to 44% thickness reduction and 23% width expansion after multi-pass cold rolling without fracture by localization of shear stress.
| Originalsprache | Englisch |
|---|---|
| Seiten (von - bis) | 6713-6720 |
| Seitenumfang | 8 |
| Fachzeitschrift | Journal of Materials Research and Technology |
| Jahrgang | 15.2021 |
| Ausgabenummer | November-December |
| DOIs | |
| Publikationsstatus | Elektronische Veröffentlichung vor Drucklegung. - 20 Nov. 2021 |
Bibliographische Notiz
Funding Information:This work was supported by the Industrial Technology Innovation Program funded by the Ministry of Trade, Industry and Energy (MOTIE), Republic of Korea through the Korea Institute for Advancement of Technology (KIAT) (No. P0006837). Additional support for M. H. Lee was provided through the Korea Institute of Industrial Technology (KITECH) (No. PJE21030). J. Eckert is grateful for the support of the European Research Council under the Advanced Grant ?INTELHYB ? Next generation of complex metallic materials in intelligent hybrid structures? (Grant ERC-2013-ADG-340025) and from the Ministry of Science and Higher Education of the Russian Federation in the framework of the Increase Competitiveness Program of (MISiS) (Support project for young research engineers, project no. K2-2020-046).
Funding Information:
This work was supported by the Industrial Technology Innovation Program funded by the Ministry of Trade, Industry and Energy ( MOTIE ), Republic of Korea through the Korea Institute for Advancement of Technology ( KIAT ) (No. P0006837). Additional support for M. H. Lee was provided through the Korea Institute of Industrial Technology (KITECH) (No. PJE21030). J. Eckert is grateful for the support of the European Research Council under the Advanced Grant “INTELHYB – Next generation of complex metallic materials in intelligent hybrid structures” (Grant ERC-2013-ADG-340025) and from the Ministry of Science and Higher Education of the Russian Federation in the framework of the Increase Competitiveness Program of (MISiS) (Support project for young research engineers, project no. K2-2020-046).
Publisher Copyright:
© 2021 The Author(s)
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