Articles | Volume 14, issue 1
https://doi.org/10.5194/jsss-14-47-2025
https://doi.org/10.5194/jsss-14-47-2025
Regular research article
 | 
27 Mar 2025
Regular research article |  | 27 Mar 2025

Cost-oriented sensor concept for magnetostrictive force measurement and its material requirements

Alexander Hofmann and Marc Heusinger

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Cited articles

Atherton, D. L. and Jiles, D. C.: Effects of stress on the magnetization of steel, IEEE T. Magn., 19, 2021–2023, 1983. 
Cullity, B. D. and Graham, C. D.: Magnetostriction and the Effects of Stress, in: Introduction to Magnetic Materials, 2nd Edn., Wiley, New York, USA, 241–273, https://doi.org/10.1002/9780470386323, 2009. 
Deutsches Institut für Normung e.V.: Magnetische Werkstoffe-Teil 4: Verfahren zur Messung der magnetischen Eigenschaften von weichmagnetischen Werkstoffen im Gleichfeld, DIN EN 60404-4:2009-08, 2009. 
Ewing, J. A.: Magnetische Induktion in Eisen und verwandten Metallen, Deutsche Ausgabe, Springer Verlag, Berlin, Germany, https://doi.org/10.1007/978-3-642-91101-9, 1892. 
Hofmann, A. and Heusinger, M.: Neues Sensorkonzept für magnetostriktive Kraftmessung in kostenorientierten Anwendungen, in: 22. GMA/ITG-Fachtagung Sensoren und Messsysteme 2024, Nürnberg, Germany, 11–12 June 2024, 45–51, https://doi.org/10.5162/sensoren2024/A2.1, 2024. 
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Short summary
Ferromagnetic materials change their magnetic properties under load, enabling the implementation of a force sensor. The magnetic field emerging from such a sensor can be measured by secondary sensors to approximate the load acting on the sensor. A test setup simulating a potential application environment is described and its measurement results are presented. Furthermore, relevant magnetic material properties of an exemplarily chosen cold working steel are discussed.
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