Hybrid Solenoids Based on Magnetic Shape Memory Alloys

Author:

Mauch Manuel1,Hutter Marco1ORCID,Gundelsweiler Bernd1ORCID

Affiliation:

1. Institute of Design and Production in Precision Engineering (IKFF), Faculty 7—Engineering Design, Production Engineering and Automotive Engineering, University of Stuttgart, Pfaffenwaldring 9, 70569 Stuttgart, Germany

Abstract

The mobility of today and tomorrow is characterized by technological change and new challenges in drive concepts such as electric or hydrogen vehicles. Abolishing conventional combustion engines creates even more need for switching or valve technology in mobility systems. For switching and controlling purposes, solenoids are used in large numbers and in a wide variety of applications, thus making a significant contribution to the overall success of the energy transition, and not only in the automotive sector. Despite their long existence, continued research is being carried out on solenoids involving new materials and actuator concepts. Great interest is focused on providing an adjustable force–displacement characteristic while simultaneously reducing the noise during switching. At IKFF, research is being conducted on hybrid electromagnets in the border area of switching and holding solenoids. This paper aims to present the major advantages of this hybrid drive concept based on an electromagnetic FEA simulation study of two drive concepts and specially developed and characterized prototypes with magnetic shape memory (MSM) alloys. The concepts differ in the spatial orientation of the MSM sticks to generate an active stroke of the plunger, which contributes to a beneficial force–displacement characteristic and lower power consumption while minimizing switching noise.

Publisher

MDPI AG

Subject

Control and Optimization,Control and Systems Engineering

Reference22 articles.

1. Mauch, M., Hutter, M., and Gundelsweiler, B. (2021). Development of an Electromagnetic Actuator with Magnetic Shape Memory Active Core for Stroke Enlargement and Noise Reduction, VDE Verlag.

2. Gundelsweiler, B., Mauch, M., and Raab, M. (2021). Aktor Mit Aktivem Kern. (DE102019218567B3_1), Germany Patent.

3. Gundelsweiler, B., and Mauch, M. (2022). Elektromagnetischer Hub- und/oder Haft-Aktor. (DE102021124654A1), Germany Patent.

4. Mauch, M., and Gundelsweiler, B. (2022, January 14–15). Design of a hybrid electromagnetic switching/holding solenoid with adjustable core. Proceedings of the IKMT 2022, Linz, Austria. 13. GMM/ETG-Symposium.

5. Large magnetic-field-induced strains in Ni2MnGa single crystals;Ullakko;Appl. Phys. Lett.,1996

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