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An Artificial Vibrissa-Like Sensor for Detection of Flows †

In nature, there are several examples of sophisticated sensory systems to sense flows, e.g., the vibrissae of mammals. Seals can detect the flow of their prey, and rats are able to perceive the flow of surrounding air. The vibrissae are arranged around muzzle of an animal. A vibrissa consists of two...

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Autores principales: Scharff, Moritz, Schorr, Philipp, Becker, Tatiana, Resagk, Christian, Alencastre Miranda, Jorge H., Behn, Carsten
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6767205/
https://www.ncbi.nlm.nih.gov/pubmed/31509939
http://dx.doi.org/10.3390/s19183892
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author Scharff, Moritz
Schorr, Philipp
Becker, Tatiana
Resagk, Christian
Alencastre Miranda, Jorge H.
Behn, Carsten
author_facet Scharff, Moritz
Schorr, Philipp
Becker, Tatiana
Resagk, Christian
Alencastre Miranda, Jorge H.
Behn, Carsten
author_sort Scharff, Moritz
collection PubMed
description In nature, there are several examples of sophisticated sensory systems to sense flows, e.g., the vibrissae of mammals. Seals can detect the flow of their prey, and rats are able to perceive the flow of surrounding air. The vibrissae are arranged around muzzle of an animal. A vibrissa consists of two major components: a shaft (infector) and a follicle–sinus complex (receptor), whereby the base of the shaft is supported by the follicle-sinus complex. The vibrissa shaft collects and transmits stimuli, e.g., flows, while the follicle-sinus complex transduces them for further processing. Beside detecting flows, the animals can also recognize the size of an object or determine the surface texture. Here, the combination of these functionalities in a single sensory system serves as paragon for artificial tactile sensors. The detection of flows becomes important regarding the measurement of flow characteristics, e.g., velocity, as well as the influence of the sensor during the scanning of objects. These aspects are closely related to each other, but, how can the characteristics of flow be represented by the signals at the base of a vibrissa shaft or by an artificial vibrissa-like sensor respectively? In this work, the structure of a natural vibrissa shaft is simplified to a slender, cylindrical/tapered elastic beam. The model is analyzed in simulation and experiment in order to identify the necessary observables to evaluate flows based on the quasi-static large deflection of the sensor shaft inside a steady, non-uniform, laminar, in-compressible flow.
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spelling pubmed-67672052019-10-02 An Artificial Vibrissa-Like Sensor for Detection of Flows † Scharff, Moritz Schorr, Philipp Becker, Tatiana Resagk, Christian Alencastre Miranda, Jorge H. Behn, Carsten Sensors (Basel) Article In nature, there are several examples of sophisticated sensory systems to sense flows, e.g., the vibrissae of mammals. Seals can detect the flow of their prey, and rats are able to perceive the flow of surrounding air. The vibrissae are arranged around muzzle of an animal. A vibrissa consists of two major components: a shaft (infector) and a follicle–sinus complex (receptor), whereby the base of the shaft is supported by the follicle-sinus complex. The vibrissa shaft collects and transmits stimuli, e.g., flows, while the follicle-sinus complex transduces them for further processing. Beside detecting flows, the animals can also recognize the size of an object or determine the surface texture. Here, the combination of these functionalities in a single sensory system serves as paragon for artificial tactile sensors. The detection of flows becomes important regarding the measurement of flow characteristics, e.g., velocity, as well as the influence of the sensor during the scanning of objects. These aspects are closely related to each other, but, how can the characteristics of flow be represented by the signals at the base of a vibrissa shaft or by an artificial vibrissa-like sensor respectively? In this work, the structure of a natural vibrissa shaft is simplified to a slender, cylindrical/tapered elastic beam. The model is analyzed in simulation and experiment in order to identify the necessary observables to evaluate flows based on the quasi-static large deflection of the sensor shaft inside a steady, non-uniform, laminar, in-compressible flow. MDPI 2019-09-10 /pmc/articles/PMC6767205/ /pubmed/31509939 http://dx.doi.org/10.3390/s19183892 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Scharff, Moritz
Schorr, Philipp
Becker, Tatiana
Resagk, Christian
Alencastre Miranda, Jorge H.
Behn, Carsten
An Artificial Vibrissa-Like Sensor for Detection of Flows †
title An Artificial Vibrissa-Like Sensor for Detection of Flows †
title_full An Artificial Vibrissa-Like Sensor for Detection of Flows †
title_fullStr An Artificial Vibrissa-Like Sensor for Detection of Flows †
title_full_unstemmed An Artificial Vibrissa-Like Sensor for Detection of Flows †
title_short An Artificial Vibrissa-Like Sensor for Detection of Flows †
title_sort artificial vibrissa-like sensor for detection of flows †
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6767205/
https://www.ncbi.nlm.nih.gov/pubmed/31509939
http://dx.doi.org/10.3390/s19183892
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