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Article

Influence of the Oscillation Parameters Amplitude and Frequency on the Microstructure of Laser-Welded Thin Nitinol Foils

by
Danka Katrakova-Krüger
1,
Sabine Weichert
1 and
Christoph Hartl
2,*
1
Material Laboratory, Faculty of Computer Science and Engineering Science, Technische Hochschule Köln, Steinmüllerallee 1, 51643 Gummersbach, Germany
2
Manufacturing Technology, Faculty of Automotive Systems and Production, Technische Hochschule Köln, Betzdorfer Str. 2, 50679 Cologne, Germany
*
Author to whom correspondence should be addressed.
J. Manuf. Mater. Process. 2025, 9(2), 32; https://doi.org/10.3390/jmmp9020032
Submission received: 22 December 2024 / Revised: 17 January 2025 / Accepted: 20 January 2025 / Published: 23 January 2025

Abstract

Laser welding has become well established for joining Ni-Ti-based shape memory alloys and extends the manufacturability of highly functional components with complex geometries. Published studies on the effect of laser welding on alterations to microstructure and properties of these alloys, however, mainly deal with conventional component dimensions and linear laser beam movement. In view of the increasing importance of microtechnology, research into joining of thin-walled Ni-Ti components is therefore of interest. At the same time, studies comparing oscillating and linear beam movement on other materials and the authors’ own work on Ni-Ti materials suggest that oscillating beam movement has a more favorable effect on alterations in material properties and microstructure. Therefore, laser welding of foils made of Ni55/Ti45 with 125 µm thickness was systematically analyzed using a fiber laser and circular oscillation. Amplitude A and frequency f were varied from 0 to 200 µm and 0 to 2000 Hz, respectively. Microstructural analysis showed that by increasing the frequency, grain refinement could be achieved up to a certain value of f. An increasing amplitude led to decreasing hardness values of the weld seam, while the influence of f was less pronounced. The analysis of the weld material using chip calorimetry (Flash DSC) revealed that the beam oscillation had fewer effects on the change in transformation points compared to a linear beam movement.
Keywords: laser welding; laser beam oscillation; Ni-Ti shape memory alloys; characterization laser welding; laser beam oscillation; Ni-Ti shape memory alloys; characterization

Share and Cite

MDPI and ACS Style

Katrakova-Krüger, D.; Weichert, S.; Hartl, C. Influence of the Oscillation Parameters Amplitude and Frequency on the Microstructure of Laser-Welded Thin Nitinol Foils. J. Manuf. Mater. Process. 2025, 9, 32. https://doi.org/10.3390/jmmp9020032

AMA Style

Katrakova-Krüger D, Weichert S, Hartl C. Influence of the Oscillation Parameters Amplitude and Frequency on the Microstructure of Laser-Welded Thin Nitinol Foils. Journal of Manufacturing and Materials Processing. 2025; 9(2):32. https://doi.org/10.3390/jmmp9020032

Chicago/Turabian Style

Katrakova-Krüger, Danka, Sabine Weichert, and Christoph Hartl. 2025. "Influence of the Oscillation Parameters Amplitude and Frequency on the Microstructure of Laser-Welded Thin Nitinol Foils" Journal of Manufacturing and Materials Processing 9, no. 2: 32. https://doi.org/10.3390/jmmp9020032

APA Style

Katrakova-Krüger, D., Weichert, S., & Hartl, C. (2025). Influence of the Oscillation Parameters Amplitude and Frequency on the Microstructure of Laser-Welded Thin Nitinol Foils. Journal of Manufacturing and Materials Processing, 9(2), 32. https://doi.org/10.3390/jmmp9020032

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