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Shell-based finite element model for predicting buckling stability of superelastic structures for elastocaloric cooling
ID
Porenta, Luka
(
Avtor
),
ID
Brank, Boštjan
(
Avtor
),
ID
Tušek, Jaka
(
Avtor
),
ID
Brojan, Miha
(
Avtor
)
PDF - Predstavitvena datoteka,
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(3,68 MB)
MD5: 408CC73AC99F90E3E139316DA17C2313
URL - Izvorni URL, za dostop obiščite
https://www.sciencedirect.com/science/article/pii/S0263823124012643
Galerija slik
Izvleček
Elastocaloric cooling devices loaded in compression have shown significant potential for fatigue-resistant operation, but for efficient operation they require thin-walled elements to facilitate heat transfer. This can cause elastocaloric elements made of superelastic materials, such as shape memory alloys (SMA), to collapse due to buckling. A common approach for computationally predicting the buckling response of these materials, which exhibit phase transformations during operation, is either to use 3D solid finite elements that can be easily coupled with 3D constitutive equations (which is accurate but extremely time consuming), or to use shell or beam finite elements coupled with simplified constitutive models (which is usually faster but has limited accuracy). In this work, we present a novel numerical approach that combines a highly accurate 7-parameter shell formulation and full 3D constitutive equations that account for the phase transformation between austenite and martensite as well as the compression–tension asymmetry in shape memory alloys (SMA) to study buckling stability. A combination of a perturbation of the structural mesh in the radial direction and a perturbation force was used to model imperfections that triggered the instability processes in the numerical simulations. The numerical responses are compared with experimental observations and show good agreement in terms of stress–strain behavior and buckling modes. Phase diagrams of the buckling modes are numerically determined for tubes with an outer diameter between 2 and 3 mm and a diameter-to-thickness ratio in the range between 5 and 25, which appear to be promising candidates for use in elastocaloric technology. We have thus demonstrated the potential of the proposed computational model as a fast and reliable tool to simulate the buckling and post-buckling behavior of SMA elements not only for elastocaloric technology but also for other applications where superelastic SMA elements are used.
Jezik:
Angleški jezik
Ključne besede:
buckling stability
,
shell finite elements
,
shape memory alloys
,
elastocaloric effects
,
phase diagrams
Vrsta gradiva:
Članek v reviji
Tipologija:
1.01 - Izvirni znanstveni članek
Organizacija:
FS - Fakulteta za strojništvo
FGG - Fakulteta za gradbeništvo in geodezijo
Status publikacije:
Objavljeno
Različica publikacije:
Objavljena publikacija
Leto izida:
2025
Št. strani:
15 str.
Številčenje:
Vol. 208, art. 112825
PID:
20.500.12556/RUL-166277
UDK:
620.1/.2
ISSN pri članku:
1879-3223
DOI:
10.1016/j.tws.2024.112825
COBISS.SI-ID:
220697347
Datum objave v RUL:
30.12.2024
Število ogledov:
557
Število prenosov:
230
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Objavi na:
Gradivo je del revije
Naslov:
Thin-walled structures
Založnik:
Elsevier
ISSN:
1879-3223
COBISS.SI-ID:
23273989
Licence
Licenca:
CC BY-NC-ND 4.0, Creative Commons Priznanje avtorstva-Nekomercialno-Brez predelav 4.0 Mednarodna
Povezava:
http://creativecommons.org/licenses/by-nc-nd/4.0/deed.sl
Opis:
Najbolj omejujoča licenca Creative Commons. Uporabniki lahko prenesejo in delijo delo v nekomercialne namene in ga ne smejo uporabiti za nobene druge namene.
Projekti
Financer:
EC - European Commission
Program financ.:
H2020
Številka projekta:
803669
Naslov:
Superelastic Porous Structures for Efficient Elastocaloric Cooling
Akronim:
SUPERCOOL
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