Characterisation of Morphic Sensors for Body Volume and Shape Applications

Stretchable conductive materials are originally conceived as radio frequency (RF) and electromagnetic interference (EMI) shielding materials, and, under stretch, they generally function as distributed strain-gauges. These commercially available conductive elastomers have found their space in low pow...

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Main Authors: Sami El Arja, Titus Jayarathna, Ganesh Naik, Paul Breen, Gaetano Gargiulo
Format: Article
Language:English
Published: MDPI AG 2019-12-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/20/1/90
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spelling doaj-26f31f0d93ad4ab292d08c564c9db2bb2020-11-25T02:04:56ZengMDPI AGSensors1424-82202019-12-012019010.3390/s20010090s20010090Characterisation of Morphic Sensors for Body Volume and Shape ApplicationsSami El Arja0Titus Jayarathna1Ganesh Naik2Paul Breen3Gaetano Gargiulo4School of Computing, Engineering and Mathematics, Western Sydney University, Penrith, NSW 2751, AustraliaMARCS Institute for Brain, Behaviour and Development, Western Sydney University, Milperra, NSW 2560, AustraliaMARCS Institute for Brain, Behaviour and Development, Western Sydney University, Milperra, NSW 2560, AustraliaMARCS Institute for Brain, Behaviour and Development, Western Sydney University, Milperra, NSW 2560, AustraliaSchool of Computing, Engineering and Mathematics, Western Sydney University, Penrith, NSW 2751, AustraliaStretchable conductive materials are originally conceived as radio frequency (RF) and electromagnetic interference (EMI) shielding materials, and, under stretch, they generally function as distributed strain-gauges. These commercially available conductive elastomers have found their space in low power health monitoring systems, for example, to monitor respiratory and cardiac functions. Conductive elastomers do not behave linearly due to material constraints; hence, when used as a sensor, a full characterisation to identify ideal operating ranges are required. In this paper, we studied how the continuous stretch cycles affected the material electrical and physical properties in different embodiment impressed by bodily volume change. We simulated the stretch associated with breathing using a bespoke stress rig to ensure reproducibility of results. The stretch rig is capable of providing constant sinusoidal waves in the physiological ranges of extension and frequency. The material performances is evaluated assessing the total harmonic distortion (THD), signal-to-noise ratio (SNR), correlation coefficient, peak to peak (P-P) amplitude, accuracy, repeatability, hysteresis, delay, and washability. The results showed that, among the three controlled variables, stretch length, stretch frequency and fabric width, the most significant factor to the signal quality is the stretch length. The ideal working region is within 2% of the original length. The material cut in strips of >3 mm show more reliable to handle a variety of stretch parameter without losing its internal characteristics and electrical properties.https://www.mdpi.com/1424-8220/20/1/90electro-resistive bandsflexible sensorconductive fabric
collection DOAJ
language English
format Article
sources DOAJ
author Sami El Arja
Titus Jayarathna
Ganesh Naik
Paul Breen
Gaetano Gargiulo
spellingShingle Sami El Arja
Titus Jayarathna
Ganesh Naik
Paul Breen
Gaetano Gargiulo
Characterisation of Morphic Sensors for Body Volume and Shape Applications
Sensors
electro-resistive bands
flexible sensor
conductive fabric
author_facet Sami El Arja
Titus Jayarathna
Ganesh Naik
Paul Breen
Gaetano Gargiulo
author_sort Sami El Arja
title Characterisation of Morphic Sensors for Body Volume and Shape Applications
title_short Characterisation of Morphic Sensors for Body Volume and Shape Applications
title_full Characterisation of Morphic Sensors for Body Volume and Shape Applications
title_fullStr Characterisation of Morphic Sensors for Body Volume and Shape Applications
title_full_unstemmed Characterisation of Morphic Sensors for Body Volume and Shape Applications
title_sort characterisation of morphic sensors for body volume and shape applications
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2019-12-01
description Stretchable conductive materials are originally conceived as radio frequency (RF) and electromagnetic interference (EMI) shielding materials, and, under stretch, they generally function as distributed strain-gauges. These commercially available conductive elastomers have found their space in low power health monitoring systems, for example, to monitor respiratory and cardiac functions. Conductive elastomers do not behave linearly due to material constraints; hence, when used as a sensor, a full characterisation to identify ideal operating ranges are required. In this paper, we studied how the continuous stretch cycles affected the material electrical and physical properties in different embodiment impressed by bodily volume change. We simulated the stretch associated with breathing using a bespoke stress rig to ensure reproducibility of results. The stretch rig is capable of providing constant sinusoidal waves in the physiological ranges of extension and frequency. The material performances is evaluated assessing the total harmonic distortion (THD), signal-to-noise ratio (SNR), correlation coefficient, peak to peak (P-P) amplitude, accuracy, repeatability, hysteresis, delay, and washability. The results showed that, among the three controlled variables, stretch length, stretch frequency and fabric width, the most significant factor to the signal quality is the stretch length. The ideal working region is within 2% of the original length. The material cut in strips of >3 mm show more reliable to handle a variety of stretch parameter without losing its internal characteristics and electrical properties.
topic electro-resistive bands
flexible sensor
conductive fabric
url https://www.mdpi.com/1424-8220/20/1/90
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