Magnetic binary encoding system based on 3D printing and GMI detection prototype

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Date
2022Author
Version
Acceso abierto / Sarbide irekia
Type
Artículo / Artikulua
Version
Versión publicada / Argitaratu den bertsioa
Project Identifier
Impact
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10.1016/j.sna.2022.113946
Abstract
In this work, the feasibility of a magnetic binary encoding system using 3D printing technology is analyzed. The
study has a double interest, that is, the possibility of printing a 3D piece that contains the codified information
and the development of a system for its decoding. For this purpose, magnetic nanoparticles (magnetite Fe3O4)
were embedded in a polymeric matrix of Polylactic Acid (PL ...
[++]
In this work, the feasibility of a magnetic binary encoding system using 3D printing technology is analyzed. The
study has a double interest, that is, the possibility of printing a 3D piece that contains the codified information
and the development of a system for its decoding. For this purpose, magnetic nanoparticles (magnetite Fe3O4)
were embedded in a polymeric matrix of Polylactic Acid (PLA) and Poly-ε-caprolactone (PCL). Similar to a
conventional barcode, a rectangular piece with an alternating pattern of strips with absence (only polymer) and a
5 wt% of embedded magnetic nanoparticles was 3D printed employing the Fused Deposition Modelling tech-
nique (FDM). The information was decoded by means of a Giant Magnetoimpedance (GMI) sensor-based pro-
totype, by scanning the surface of the piece and measuring the changes in the magnetic field. As sensor nucleus,
an amorphous soft magnetic wire of nominal composition (Co0.94 Fe0.06)72.5 Si12.5 B15 was employed. The
decoding prototype incorporates a homemade electronic sensor interface that permits, at the time, the GMI
sensor excitation and the subsequent signal conditioning to optimize its response. The output signal enables the
detection of the magnetite nanoparticles and the magnetic decoding of the encoded information (“1” and “0”,
presence or absence of the magnetic nanoparticles, respectively). [--]
Subject
3D printing,
Polymer-matrix composites,
Binary encoding information,
GMI effect,
Magnetic sensor,
Electronic sensor interface
Publisher
Elsevier
Published in
Sensors and Actuators. A: Physical 347 (2022) 113946
Departament
Universidad Pública de Navarra. Departamento de Ciencias /
Nafarroako Unibertsitate Publikoa. Zientziak Saila /
Universidad Pública de Navarra. Departamento de Ingeniería Eléctrica, Electrónica y de Comunicación /
Nafarroako Unibertsitate Publikoa. Ingeniaritza Elektrikoa, Elektronikoa eta Telekomunikazio Ingeniaritza Saila /
Universidad Pública de Navarra/Nafarroako Unibertsitate Publikoa. Institute for Advanced Materials - INAMAT /
Universidad Pública de Navarra/Nafarroako Unibertsitate Publikoa. Institute of Smart Cities - ISC
Publisher version
Sponsorship
This work has been funded by the Gobierno de Navarra - Departamento de Desarrollo Económico within the framework of the Project: “Advanced Manufacturing of Electronics, AMELEC”. It has also been partially funded by the Spanish Government - Ministerio Ciencia-Innovación (PID2019–107258RB-C32 of MCIN/AEI/10.13039/501100011033). Open access funding provided by Universidad Pública de Navarra. The authors also want to acknowledge the Technological Center specialized in mobility and mechatronics of Navarra (NAITEC), for supplying the 3D printed piece and Prof. M. Vázquez (ICMM, Madrid Spain) for kindly supplying the soft magnetic wires.