Contactless and absolute linear displacement detection based upon 3D printed magnets combined with passive radio-frequency identification

Author(s)
Roman Windl, Claas Abert, Florian Bruckner, Christian Huber, Christoph Vogler, Herbert Weitensfelder, Dieter Suess
Abstract

Within this work a passive and wireless magnetic sensor, to monitor linear displacements, is proposed. We exploit recent advances in 3D printing and fabricate a polymer bonded magnet with a spatially linear magnetic field component corresponding to the length of the magnet. Regulating the magnetic compound fraction during printing allows specific shaping of the magnetic field distribution. A giant magnetoresistance magnetic field sensor is combined with a radio-frequency identification tag in order to passively monitor the exerted magnetic field of the printed magnet. Due to the tailored magnetic field, a displacement of the magnet with respect to the sensor can be detected within the sub-mm regime. The sensor design provides good flexibility by controlling the 3D printing process according to application needs. Absolute displacement detection using low cost components and providing passive operation, long term stability, and longevity renders the proposed sensor system ideal for structural health monitoring applications.

Organisation(s)
Physics of Functional Materials
Journal
AIP Advances
Volume
7
No. of pages
11
ISSN
2158-3226
DOI
https://doi.org/10.1063/1.5004499
Publication date
11-2017
Peer reviewed
Yes
Austrian Fields of Science 2012
103018 Materials physics
Keywords
ASJC Scopus subject areas
Physics and Astronomy(all)
Portal url
https://ucris.univie.ac.at/portal/en/publications/contactless-and-absolute-linear-displacement-detection-based-upon-3d-printed-magnets-combined-with-passive-radiofrequency-identification(e2022609-8d51-4917-98ac-52dacc6959b1).html