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  4. Mechanical properties of additively manufactured AlSi7Mg0.6 and IN718 thin-walled structures
 
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Mechanical properties of additively manufactured AlSi7Mg0.6 and IN718 thin-walled structures

Citation Link: https://doi.org/10.15480/882.16598
Publikationstyp
Journal Article
Date Issued
2026-01-16
Sprache
English
Author(s)
Röver, Tim  orcid-logo
Industrialisierung smarter Werkstoffe M-27  
Biluh, Brian  
Herzog, Dirk  orcid-logo
Industrialisierung smarter Werkstoffe M-27  
Gil, Emma  
Mancisidor, Ane Miren  
Aranzabe, Jon  
García-Blanco, M. Belen  
Espinosa, Elixabete
Toubiana, Ephraïm
Arrieta-Lizarazu, Leire
Berasategi Arostegi, Joanes
Martinez Agirre, Manex  
TORE-DOI
10.15480/882.16598
TORE-URI
https://hdl.handle.net/11420/61167
Journal
Progress in additive manufacturing  
Citation
Progress in Additive Manufacturing (in Press): (2026)
Publisher DOI
10.1007/s40964-025-01428-3
Scopus ID
2-s2.0-105027781755
ISSN
Springer International Publishing
Additively manufactured heat exchanger cores offer enhanced compactness, thermomechanical robustness, and improved integration within confined assembly spaces. However, their complex thin-walled lattice structures pose significant challenges for mechanical characterization and conventional finite element analysis, due to high computational costs. This study investigates the tensile mechanical properties of grid-like structures produced by powder bed fusion with a laser beam in aluminum alloy AlSi7Mg0.6 and nickel–chromium-based superalloy Inconel 718 (IN718). Samples with varying wall thicknesses were fabricated, heat treated, and some were surface treated to reduce surface roughness. Tensile tests combined with digital image correlation and non-linear finite element modeling were conducted to evaluate mechanical behavior. Experimental results reveal that a minimum solid material proportion (Ps ≈ 0.09 for AlSi7Mg0.6; Ps ≈ 0.06 for IN718) is required to achieve reliable elastoplastic deformation; below these thresholds, premature brittle failure dominates. Equivalent Young’s moduli and yield strength scale linearly with solid material proportion, the latter reaching approximately 59% and 52% of bulk material values for AlSi7Mg0.6 and IN718, respectively. Surface treatment contributed mainly to wall thickness reduction without significantly altering mechanical performance. Homogenized porous material models based on the Gibson–Ashby framework and a modified Hockett–Sherby constitutive law were developed, enabling efficient and realistic simulation of these complex structures. These findings provide critical experimental data and modeling tools essential for the design and optimization of next-generation additively manufactured heat exchangers in both alloys.
Subjects
Aluminum alloy AlSi7Mg0.6
Heat exchanger (HX)
Lattice structures
Mechanical properties
Nickel-chromium-based superalloy IN718
Powder bed fusion of metal with a laser beam (PBF-LB/M)
Surface treatment
Thin walls
DDC Class
620.11: Engineering Materials
518: Numerical Analysis
Funding(s)
Projekt DEAL  
Lizenz
https://creativecommons.org/licenses/by/4.0/
Publication version
publishedVersion
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s40964-025-01428-3.pdf

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6.66 MB

Format

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