People | Locations | Statistics |
---|---|---|
Naji, M. |
| |
Motta, Antonella |
| |
Aletan, Dirar |
| |
Mohamed, Tarek |
| |
Ertürk, Emre |
| |
Taccardi, Nicola |
| |
Kononenko, Denys |
| |
Petrov, R. H. | Madrid |
|
Alshaaer, Mazen | Brussels |
|
Bih, L. |
| |
Casati, R. |
| |
Muller, Hermance |
| |
Kočí, Jan | Prague |
|
Šuljagić, Marija |
| |
Kalteremidou, Kalliopi-Artemi | Brussels |
|
Azam, Siraj |
| |
Ospanova, Alyiya |
| |
Blanpain, Bart |
| |
Ali, M. A. |
| |
Popa, V. |
| |
Rančić, M. |
| |
Ollier, Nadège |
| |
Azevedo, Nuno Monteiro |
| |
Landes, Michael |
| |
Rignanese, Gian-Marco |
|
Bergmann, Alexander
Graz University of Technology
in Cooperation with on an Cooperation-Score of 37%
Topics
Publications (15/15 displayed)
- 2024Comparative analysis of fabrication techniques for sensing windows on silicon nitride waveguide platforms
- 2024Millimeter Wave Metamaterial-based Strain Sensor Concept
- 2023Large-scale automated emission measurement of individual vehicles with point samplingcitations
- 2022Humidity Responsive Reflection Grating Made by Ultrafast Nanoimprinting of a Hydrogel Thin Filmcitations
- 2021Silicon Nitride Photonic Particle Detector-Experiments and Model Assessmentcitations
- 2020Vacuum-Assisted Selective Adhesive Imprinting for Photonic Packaging of Complex MOEMS Devicescitations
- 2020Fast optical humidity sensor based on nanostructured hydrogels
- 2019Vacuum-assisted selective adhesive imprinting for heterogeneous system integration of MOEMS devices
- 2019Fast Optical Humidity Sensor Based on Hydrogel Thin Film Expansion for Harsh Environmentcitations
- 2019State Estimation Approach of Lithium-Ion Batteries by Simplified Ultrasonic Time-of-Flight Measurementcitations
- 2018First Steps towards a Super-Compact in-situ Laser-Induced-Incandescence Sensor System
- 2017Modelling chemical degradation of ionomer in a polymer electrolyte fuel cell
- 2004Interpretation of small-angle scattering data of inhomogeneous ellipsoidscitations
- 2004Small Angle X-Ray Scattering with Cobalt Radiation for Nanostructure Characterization of Fe-Based Specimen
- 2000Evaluation of small-angle scattering data of charged particles using the generalized indirect Fourier transformation techniquecitations
Places of action
Organizations | Location | People |
---|
article
Millimeter Wave Metamaterial-based Strain Sensor Concept
Abstract
<p>We present a fully telemetric strain sensor concept based on a novel millimeter wave metamaterial and show the experimental proof of concept. The metamaterial consists of a single layer of copper structures that are embedded between two sheets of thermoplastic polyurethane (TPU). Our metamaterial design specifically exploits the significant difference in elastic modulus between copper and TPU, so that the sensor effect does not require deformation of the copper structures. This prevents degradation due to delamination or cracking of the copper layer. The metamaterial is manufacturable with low-cost state-of-the-art manufacturing methods of conformable electronics. The geometrical parameters of the unit cell structures are determined from finite element simulations. We present a semi-analytical model of the sensor effect that allows for a low computational cost calculation of the sensitivity and provides a detailed analysis of the metamaterial unit cell components in terms of their contribution to the sensitivity. Our model shows that the change in relative permittivity due to strain, an effect analogous to inverse electrostriction, contributes significantly to the sensitivity. We recorded reflection spectra of a sample using millimeter wave laboratory equipment and determined the sensitivity from the strain-induced shift of the characteristic minima in the reflection spectra. The experiment gives a sensitivity of (13 117 &#x00B1; 465) Hz/microstrain. The distinguishing features of our proposed sensor concept are the minimal strain-induced delamination due to negligible deformation of the metallic structures and that read-out is implemented in reflection which allows for measurement on metal components.</p>