3D-Printing
Damage-Tolerant Architected Metallic Materials
with Shape Recoverability via Special Deformation Design of Constituent
Material
Posted on 2021-08-20 - 17:04
Architected
metallic materials generally suffer from a serious
engineering problem of mechanical instability manifested as the emergence
of localized deformation bands and collapse of strength. They usually
cannot exhibit satisfactory shape recoverability due to the little
recoverable strain of metallic constituent material. After yielding,
the metallic constituent material usually exhibits a continuous low
strain-hardening capacity, giving the local yielded regions of architecture
low load resistance and easily developing into excessive deformation
bands, accompanied by the collapse of strength. Here, a novel constituent
material deformation design strategy has been skillfully proposed,
where the low load resistance of yielded regions of the architecture
can be effectively compensated by the significant self-strengthening
behavior of constituent material, thus avoiding the formation of localized
deformation bands and collapse of strength. To substantiate this strategy,
shape-memory alloys (SMAs) are considered as suitable constituent
materials for possessing both self-strengthening behavior and shape-recovery
function. A 3D-printing technique was adopted to prepare various NiTi
SMA architected materials with different geometric structures. It
is demonstrated that all of these architected metallic materials can
be stably and uniformly compressed by up to 80% without the formation
of localized bands, collapse of strength, and structural failure,
exhibiting ultrahigh damage tolerance. Furthermore, these SMA architected
materials can display more than 98% shape recovery even after 80%
deformation and excellent cycle stability during 15 cycles. This work
exploits the amazing impact of constituent materials on constructing
supernormal properties of architected materials and will open new
avenues for developing high-performance architected metallic materials.
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Xiong, Zhiwei; Li, Meng; Hao, Shijie; Liu, Yinong; Cui, Lishan; Yang, Hong; et al. (2021). 3D-Printing
Damage-Tolerant Architected Metallic Materials
with Shape Recoverability via Special Deformation Design of Constituent
Material. ACS Publications. Collection. https://doi.org/10.1021/acsami.1c11226Â