Detail publikačního výsledku

Characterization of Nitinol Produced by Laser Powder Bed Fusion for Mechanical Metamaterial Applications

ČERVINEK, O.; HURNÍK, J.; ŠMÍD, M.; ZOBAC, O.; TODT, M.; KOUTNÝ, D.

Originální název

Characterization of Nitinol Produced by Laser Powder Bed Fusion for Mechanical Metamaterial Applications

Anglický název

Characterization of Nitinol Produced by Laser Powder Bed Fusion for Mechanical Metamaterial Applications

Druh

Článek WoS

Originální abstrakt

This study investigates the relationship between the process parameters of the laser powder bed fusion technology and the functional properties of nitinol metamaterial for morphing actuator applications. Using an extraordinary wide range of laser powers (40-400 W) and scanning speeds (175-3000 mm s-1) provides the most comprehensive assessment of resulting morphologies, allowing identification of defect-free configurations, especially for low energy densities. The assessment is done with respect to porosity, thin-wall dimensional accuracy, crystallography, austenite-martensite phase transformation, and recoverability under cyclic loading. The results show that low volumetric energy density of 41-55 J mm-3 can lead to an internal porosity of less than 0.1%, although brittle cracking may occur. The cyclic compression tests show a variable quasilinear pseudoelasticity with low hysteresis. The highest total strain after 50 cycles is 5.43% with an associated cumulative residual strain of 2.79%, stabilizing after approximately 30 cycles. The recoverable strain decreases with increasing load, most significantly from 53.4% at 800 MPa to 35.1% at 1200 MPa. The computational estimation of metamaterial morphing capability provides reliable results if the linear assumption after the fifth cycle is adopted by the material model and geometrical thickness deviations are reflected.

Anglický abstrakt

This study investigates the relationship between the process parameters of the laser powder bed fusion technology and the functional properties of nitinol metamaterial for morphing actuator applications. Using an extraordinary wide range of laser powers (40-400 W) and scanning speeds (175-3000 mm s-1) provides the most comprehensive assessment of resulting morphologies, allowing identification of defect-free configurations, especially for low energy densities. The assessment is done with respect to porosity, thin-wall dimensional accuracy, crystallography, austenite-martensite phase transformation, and recoverability under cyclic loading. The results show that low volumetric energy density of 41-55 J mm-3 can lead to an internal porosity of less than 0.1%, although brittle cracking may occur. The cyclic compression tests show a variable quasilinear pseudoelasticity with low hysteresis. The highest total strain after 50 cycles is 5.43% with an associated cumulative residual strain of 2.79%, stabilizing after approximately 30 cycles. The recoverable strain decreases with increasing load, most significantly from 53.4% at 800 MPa to 35.1% at 1200 MPa. The computational estimation of metamaterial morphing capability provides reliable results if the linear assumption after the fifth cycle is adopted by the material model and geometrical thickness deviations are reflected.

Klíčová slova

cyclic loading, differential scanning calorimetry, laser powder bed fusion, nitinol, superelasticity

Klíčová slova v angličtině

cyclic loading, differential scanning calorimetry, laser powder bed fusion, nitinol, superelasticity

Autoři

ČERVINEK, O.; HURNÍK, J.; ŠMÍD, M.; ZOBAC, O.; TODT, M.; KOUTNÝ, D.

Vydáno

27.04.2026

Nakladatel

Wiley

Periodikum

Advanced engineering materials

Číslo

April 2026

Stát

Spolková republika Německo

Strany od

1

Strany do

18

Strany počet

18

URL

Plný text v Digitální knihovně

BibTex

@article{BUT201935,
  author="Ondřej {Červinek} and Jakub {Hurník} and Miroslav {Šmíd} and  {} and  {} and Daniel {Koutný}",
  title="Characterization of Nitinol Produced by Laser Powder Bed Fusion for Mechanical Metamaterial Applications",
  journal="Advanced engineering materials",
  year="2026",
  number="April 2026",
  pages="1--18",
  doi="10.1002/adem.202502499",
  issn="1438-1656",
  url="https://doi.org/10.1002/adem.202502499"
}