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@ARTICLE{Li:893794,
author = {Li, Xiaoqiang and Malzbender, Jürgen and Yan, Gang and
Gonzalez-Julian, Jesus and Schwaiger, Ruth},
title = {{A} combined experimental and modeling study revealing the
anisotropic mechanical response of {T}i2{A}l{N} {MAX} phase},
journal = {Journal of the European Ceramic Society},
volume = {41},
number = {12},
issn = {0955-2219},
address = {Amsterdam [u.a.]},
publisher = {Elsevier Science},
reportid = {FZJ-2021-02833},
pages = {5872 - 5881},
year = {2021},
abstract = {Ti2AlN MAX phase with a hexagonal crystal structure
exhibits great potential as structural material for
operation under harsh environments due to its excellent
mechanical performance. For a reliable application, a
comprehensive understanding of the mechanical behavior, and
in particular of the anisotropic properties is needed. Thus,
in this study, we combined nanoindentation and
electron-backscatter diffraction experiments to correlate
elastic modulus and hardness of Ti2AlN to the
crystallographic orientation. We used two different modeling
approaches to better understand, validate, and in the long
run to predict the anisotropic mechanical behavior of MAX
phase materials. While we observed consistent trends in both
experiments and modeling, elastic modulus and hardness
showed different dependencies on the crystal orientation.},
cin = {IEK-1 / IEK-2},
ddc = {660},
cid = {I:(DE-Juel1)IEK-1-20101013 / I:(DE-Juel1)IEK-2-20101013},
pnm = {1242 - Concentrating Solar Power (CSP) (POF4-124)},
pid = {G:(DE-HGF)POF4-1242},
typ = {PUB:(DE-HGF)16},
UT = {WOS:000661435900001},
doi = {10.1016/j.jeurceramsoc.2021.05.015},
url = {https://juser.fz-juelich.de/record/893794},
}