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Geometry optimization of laser-induced stress concentration sites on hydrophobic surfaces for low ice adhesion
ID
Hadžić, Armin
(
Avtor
),
ID
Može, Matic
(
Avtor
)
PDF - Predstavitvena datoteka,
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(3,64 MB)
MD5: D2D07BB059D5232F935295C85892EF52
URL - Izvorni URL, za dostop obiščite
https://iopscience.iop.org/article/10.1088/2515-7639/ae8bda/meta
Galerija slik
Izvleček
Water and ice accumulation on engineering surfaces present significant challenges in numerous applications by increasing weight, altering aerodynamic and hydrodynamic performance, inducing vibrations, and reducing operational reliability. Passive low-ice-adhesion surfaces therefore represent a promising strategy for reducing the energy and mechanical load needed for ice removal. One possible approach is to introduce controlled surface features that promote stress concentration at the ice–solid interface and facilitate ice detachment. However, if such features are too densely distributed or too large, they may also increase mechanical interlocking with ice. Therefore, this study investigates how the size and pitch of laser-induced square features affect the ice adhesion strength of hydrophobized aluminum surfaces. Square features were fabricated on 1050 A aluminum alloy by nanosecond laser texturing and subsequently functionalized with a thin PDMS coating. The side length of the square spots was varied between 150 and 300 μm, while the center-to-center pitch was systematically varied from 0.5 to 4.0 mm. The surfaces were characterized using scanning electron microscopy, optical profilometry, and apparent static contact angle measurements, while ice adhesion strength was evaluated by horizontal shear detachment of a 20 × 20 × 20 mm$^{3}$ ice cube at −20 °C. The results showed that spot pitch is the key geometrical parameter governing ice adhesion. At the smallest pitch of 0.5 mm, all textured surfaces exhibited higher ice adhesion than the bare reference surface, indicating that densely arranged features promoted mechanical interlocking rather than crack-assisted debonding. With increasing pitch, ice adhesion decreased and reached a minimum at intermediate pitch values, reducing adhesion by up to 65% relative to the PDMS-coated reference surface. These findings show that laser-induced surface geometry must be carefully optimized, since the same type of surface feature can either reduce or increase ice adhesion depending on its size and spacing.
Jezik:
Angleški jezik
Ključne besede:
ice adhesion strength
,
anti-icing
,
laser texturing
,
stress concentration
,
PDMS
,
hydrophobic surfaces
,
crack initiation
Vrsta gradiva:
Članek v reviji
Tipologija:
1.01 - Izvirni znanstveni članek
Organizacija:
FS - Fakulteta za strojništvo
Status publikacije:
Objavljeno
Različica publikacije:
Objavljena publikacija
Leto izida:
2026
Št. strani:
15 str.
Številčenje:
Vol. 9, no. 3, art. 035014
PID:
20.500.12556/RUL-185192
UDK:
621.9.048:532.21
ISSN pri članku:
2515-7639
DOI:
10.1088/2515-7639/ae8bda
COBISS.SI-ID:
286116611
Datum objave v RUL:
27.07.2026
Število ogledov:
162
Število prenosov:
80
Metapodatki:
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Objavi na:
Gradivo je del revije
Naslov:
JPhys materials
Skrajšan naslov:
JPhys mater.
Založnik:
IOP Publishing
ISSN:
2515-7639
COBISS.SI-ID:
529763097
Licence
Licenca:
CC BY 4.0, Creative Commons Priznanje avtorstva 4.0 Mednarodna
Povezava:
http://creativecommons.org/licenses/by/4.0/deed.sl
Opis:
To je standardna licenca Creative Commons, ki daje uporabnikom največ možnosti za nadaljnjo uporabo dela, pri čemer morajo navesti avtorja.
Sekundarni jezik
Jezik:
Slovenski jezik
Ključne besede:
adhezijska trdnost ledu
,
zaviranje zmrzovanja
,
lasersko teksturiranje
,
koncentracija napetosti
,
PDMS
,
hidrofobne površine
,
razpoke
Projekti
Financer:
ARRS - Agencija za raziskovalno dejavnost Republike Slovenije
Številka projekta:
P2-0223
Naslov:
Prenos toplote in snovi
Financer:
ARRS - Agencija za raziskovalno dejavnost Republike Slovenije
Številka projekta:
J2-50085
Naslov:
Raziskave medfaznih pojavov kapljic in mehurčkov na funkcionaliziranih površinah ob uporabi napredne diagnostike za razvoj okoljskih tehnologij prihodnosti in izboljšanega prenosa toplote (DroBFuSE)
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