Nanoscale brittle-to-ductile transition of the C15 CaAl$_2$ Laves phase

Fuente: arXiv
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Main Authors: Kanjilal, Anwesha, Ahmadian, Ali, Freund, Martina, Sun, Pei-Ling, Korte-Kerzel, Sandra, Dehm, Gerhard, Best, James P.
Format: Preprint
Published: 2024
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author Kanjilal, Anwesha
Ahmadian, Ali
Freund, Martina
Sun, Pei-Ling
Korte-Kerzel, Sandra
Dehm, Gerhard
Best, James P.
author_facet Kanjilal, Anwesha
Ahmadian, Ali
Freund, Martina
Sun, Pei-Ling
Korte-Kerzel, Sandra
Dehm, Gerhard
Best, James P.
contents The influence of temperature on the deformation behaviour of the C15 CaAl$_2$ Laves phase, a key constituent for enhancing the mechanical properties of Mg alloys up to service temperatures of 200 °C, remains largely unexplored. This study presents, for the first time, the nanoscale brittle-to-ductile transition (BDT) of this intermetallic phase through in situ testing including nanoindentation, scratch testing, and micropillar splitting conducted at elevated temperatures. By correlating observations from these techniques, changes in deformation of CaAl$_2$ were identified in relation to temperature. High-temperature nanoindentation quantitatively determined the temperature range for the BDT, and revealed that CaAl$_2$ undergoes a BDT at ~0.55T$_m$, exhibiting an intermediate region of microplasticity. A noticeable decrease in nanoindentation hardness was observed at ~450-500 °C, accompanied by an increase in residual indent size, while indentation cracking was not observed above 300 °C. Results from high-temperature micropillar splitting revealed cracking and brittle pillar splitting up to 300 °C, with an increase in apparent fracture toughness from 0.9 $\pm$ 0.1 MPa$\cdot\sqrt m$ to 2.8 $\pm$ 0.3 MPa$\cdot\sqrt m$, and subsequent crack-free plastic deformation from 400 °C. Transmission electron microscopy analysis of the deformed material from nanoindentation revealed that the BDT of CaAl$_2$ may be attributed to enhanced dislocation plasticity with increasing temperature.
format Preprint
id arxiv_https___arxiv_org_abs_2403_12507
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Nanoscale brittle-to-ductile transition of the C15 CaAl$_2$ Laves phase
Kanjilal, Anwesha
Ahmadian, Ali
Freund, Martina
Sun, Pei-Ling
Korte-Kerzel, Sandra
Dehm, Gerhard
Best, James P.
Materials Science
The influence of temperature on the deformation behaviour of the C15 CaAl$_2$ Laves phase, a key constituent for enhancing the mechanical properties of Mg alloys up to service temperatures of 200 °C, remains largely unexplored. This study presents, for the first time, the nanoscale brittle-to-ductile transition (BDT) of this intermetallic phase through in situ testing including nanoindentation, scratch testing, and micropillar splitting conducted at elevated temperatures. By correlating observations from these techniques, changes in deformation of CaAl$_2$ were identified in relation to temperature. High-temperature nanoindentation quantitatively determined the temperature range for the BDT, and revealed that CaAl$_2$ undergoes a BDT at ~0.55T$_m$, exhibiting an intermediate region of microplasticity. A noticeable decrease in nanoindentation hardness was observed at ~450-500 °C, accompanied by an increase in residual indent size, while indentation cracking was not observed above 300 °C. Results from high-temperature micropillar splitting revealed cracking and brittle pillar splitting up to 300 °C, with an increase in apparent fracture toughness from 0.9 $\pm$ 0.1 MPa$\cdot\sqrt m$ to 2.8 $\pm$ 0.3 MPa$\cdot\sqrt m$, and subsequent crack-free plastic deformation from 400 °C. Transmission electron microscopy analysis of the deformed material from nanoindentation revealed that the BDT of CaAl$_2$ may be attributed to enhanced dislocation plasticity with increasing temperature.
title Nanoscale brittle-to-ductile transition of the C15 CaAl$_2$ Laves phase
topic Materials Science
url https://arxiv.org/abs/2403.12507