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Foil Strain Gauges Using Piezoresistive Carbon Nanotube Yarn: Fabrication and Calibration

Carbon nanotube yarns are micron-scale fibers comprised by tens of thousands of carbon nanotubes in their cross section and exhibiting piezoresistive characteristics that can be tapped to sense strain. This paper presents the details of novel foil strain gauge sensor configurations comprising carbon...

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Autores principales: Abot, Jandro L., Góngora-Rubio, Mário R., Anike, Jude C., Kiyono, César Y., Mello, Luis A. M., Cardoso, Valtemar F., Rosa, Reinaldo L. S., Kuebler, Derek A., Brodeur, Grace E., Alotaibi, Amani H., Coene, Marisa P., Coene, Lauren M., Jean, Elizabeth, Santiago, Rafael C., Oliveira, Francisco H. A., Rangel, Ricardo, Thomas, Gilles P., Belay, Kalayu, da Silva, Luciana W., Moura, Rafael T., Seabra, Antonio C., Silva, Emílio C. N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5855930/
https://www.ncbi.nlm.nih.gov/pubmed/29401745
http://dx.doi.org/10.3390/s18020464
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author Abot, Jandro L.
Góngora-Rubio, Mário R.
Anike, Jude C.
Kiyono, César Y.
Mello, Luis A. M.
Cardoso, Valtemar F.
Rosa, Reinaldo L. S.
Kuebler, Derek A.
Brodeur, Grace E.
Alotaibi, Amani H.
Coene, Marisa P.
Coene, Lauren M.
Jean, Elizabeth
Santiago, Rafael C.
Oliveira, Francisco H. A.
Rangel, Ricardo
Thomas, Gilles P.
Belay, Kalayu
da Silva, Luciana W.
Moura, Rafael T.
Seabra, Antonio C.
Silva, Emílio C. N.
author_facet Abot, Jandro L.
Góngora-Rubio, Mário R.
Anike, Jude C.
Kiyono, César Y.
Mello, Luis A. M.
Cardoso, Valtemar F.
Rosa, Reinaldo L. S.
Kuebler, Derek A.
Brodeur, Grace E.
Alotaibi, Amani H.
Coene, Marisa P.
Coene, Lauren M.
Jean, Elizabeth
Santiago, Rafael C.
Oliveira, Francisco H. A.
Rangel, Ricardo
Thomas, Gilles P.
Belay, Kalayu
da Silva, Luciana W.
Moura, Rafael T.
Seabra, Antonio C.
Silva, Emílio C. N.
author_sort Abot, Jandro L.
collection PubMed
description Carbon nanotube yarns are micron-scale fibers comprised by tens of thousands of carbon nanotubes in their cross section and exhibiting piezoresistive characteristics that can be tapped to sense strain. This paper presents the details of novel foil strain gauge sensor configurations comprising carbon nanotube yarn as the piezoresistive sensing element. The foil strain gauge sensors are designed using the results of parametric studies that maximize the sensitivity of the sensors to mechanical loading. The fabrication details of the strain gauge sensors that exhibit the highest sensitivity, based on the modeling results, are described including the materials and procedures used in the first prototypes. Details of the calibration of the foil strain gauge sensors are also provided and discussed in the context of their electromechanical characterization when bonded to metallic specimens. This characterization included studying their response under monotonic and cyclic mechanical loading. It was shown that these foil strain gauge sensors comprising carbon nanotube yarn are sensitive enough to capture strain and can replicate the loading and unloading cycles. It was also observed that the loading rate affects their piezoresistive response and that the gauge factors were all above one order of magnitude higher than those of typical metallic foil strain gauges. Based on these calibration results on the initial sensor configurations, new foil strain gauge configurations will be designed and fabricated, to increase the strain gauge factors even more.
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spelling pubmed-58559302018-03-20 Foil Strain Gauges Using Piezoresistive Carbon Nanotube Yarn: Fabrication and Calibration Abot, Jandro L. Góngora-Rubio, Mário R. Anike, Jude C. Kiyono, César Y. Mello, Luis A. M. Cardoso, Valtemar F. Rosa, Reinaldo L. S. Kuebler, Derek A. Brodeur, Grace E. Alotaibi, Amani H. Coene, Marisa P. Coene, Lauren M. Jean, Elizabeth Santiago, Rafael C. Oliveira, Francisco H. A. Rangel, Ricardo Thomas, Gilles P. Belay, Kalayu da Silva, Luciana W. Moura, Rafael T. Seabra, Antonio C. Silva, Emílio C. N. Sensors (Basel) Article Carbon nanotube yarns are micron-scale fibers comprised by tens of thousands of carbon nanotubes in their cross section and exhibiting piezoresistive characteristics that can be tapped to sense strain. This paper presents the details of novel foil strain gauge sensor configurations comprising carbon nanotube yarn as the piezoresistive sensing element. The foil strain gauge sensors are designed using the results of parametric studies that maximize the sensitivity of the sensors to mechanical loading. The fabrication details of the strain gauge sensors that exhibit the highest sensitivity, based on the modeling results, are described including the materials and procedures used in the first prototypes. Details of the calibration of the foil strain gauge sensors are also provided and discussed in the context of their electromechanical characterization when bonded to metallic specimens. This characterization included studying their response under monotonic and cyclic mechanical loading. It was shown that these foil strain gauge sensors comprising carbon nanotube yarn are sensitive enough to capture strain and can replicate the loading and unloading cycles. It was also observed that the loading rate affects their piezoresistive response and that the gauge factors were all above one order of magnitude higher than those of typical metallic foil strain gauges. Based on these calibration results on the initial sensor configurations, new foil strain gauge configurations will be designed and fabricated, to increase the strain gauge factors even more. MDPI 2018-02-05 /pmc/articles/PMC5855930/ /pubmed/29401745 http://dx.doi.org/10.3390/s18020464 Text en © 2018 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
Abot, Jandro L.
Góngora-Rubio, Mário R.
Anike, Jude C.
Kiyono, César Y.
Mello, Luis A. M.
Cardoso, Valtemar F.
Rosa, Reinaldo L. S.
Kuebler, Derek A.
Brodeur, Grace E.
Alotaibi, Amani H.
Coene, Marisa P.
Coene, Lauren M.
Jean, Elizabeth
Santiago, Rafael C.
Oliveira, Francisco H. A.
Rangel, Ricardo
Thomas, Gilles P.
Belay, Kalayu
da Silva, Luciana W.
Moura, Rafael T.
Seabra, Antonio C.
Silva, Emílio C. N.
Foil Strain Gauges Using Piezoresistive Carbon Nanotube Yarn: Fabrication and Calibration
title Foil Strain Gauges Using Piezoresistive Carbon Nanotube Yarn: Fabrication and Calibration
title_full Foil Strain Gauges Using Piezoresistive Carbon Nanotube Yarn: Fabrication and Calibration
title_fullStr Foil Strain Gauges Using Piezoresistive Carbon Nanotube Yarn: Fabrication and Calibration
title_full_unstemmed Foil Strain Gauges Using Piezoresistive Carbon Nanotube Yarn: Fabrication and Calibration
title_short Foil Strain Gauges Using Piezoresistive Carbon Nanotube Yarn: Fabrication and Calibration
title_sort foil strain gauges using piezoresistive carbon nanotube yarn: fabrication and calibration
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5855930/
https://www.ncbi.nlm.nih.gov/pubmed/29401745
http://dx.doi.org/10.3390/s18020464
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