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Linear-Range Extension for Linear Variable Differential Transformer Using Hyperbolic Sine Function

In this paper, a circuit technique to extend the measuring range of a linear variable differential transformer (LVDT) is proposed. The transfer characteristic of the LVDT contains the odd function form of the cubic polynomial. Therefore, the measuring range of a commercial LVDT is linear in a narrow...

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Autores principales: Rerkratn, Apinai, Tongcharoen, Jakkapun, Petchmaneelumka, Wandee, Riewruja, Vanchai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9143317/
https://www.ncbi.nlm.nih.gov/pubmed/35632083
http://dx.doi.org/10.3390/s22103674
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author Rerkratn, Apinai
Tongcharoen, Jakkapun
Petchmaneelumka, Wandee
Riewruja, Vanchai
author_facet Rerkratn, Apinai
Tongcharoen, Jakkapun
Petchmaneelumka, Wandee
Riewruja, Vanchai
author_sort Rerkratn, Apinai
collection PubMed
description In this paper, a circuit technique to extend the measuring range of a linear variable differential transformer (LVDT) is proposed. The transfer characteristic of the LVDT contains the odd function form of the cubic polynomial. Therefore, the measuring range of a commercial LVDT is linear in a narrow range compared to its physical dimensions. The wide measuring range of the LVDT requires a large structure of the LVDT, which increases the scale and the cost of the measurement system. The measuring range of the LVDT can be linearly extended to the maximum of the stroke range using the proposed technique. The realization of the proposed technique is based on the use of the hyperbolic sine (sinh) function of the electronic circuit building block, named the class AB bipolar amplifier. The class AB bipolar amplifier can be obtained by the current feedback operational amplifier (CFOA). The circuit of the proposed technique requires two CFOAs and an operational transconductance amplifier (OTA) as the active devices and all devices used in the proposed technique to synthesize the sinh function are commercially available. The proposed technique exhibits an ability to compensate for the nonlinear characteristic of the LVDT without digital components. The proposed technique is attractive in terms of its simple circuit configuration, small size, and low cost. The linear range extension of the LVDT used in this paper is significantly increased with a maximum error of about 18.3 μm of 6.2 mm at the full stroke range or the full-scale percentage error of about 0.295%. The results indicate that the proposed technique provides excellent performance to extend the measuring range of the LVDT without modifying the LVDT structure.
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spelling pubmed-91433172022-05-29 Linear-Range Extension for Linear Variable Differential Transformer Using Hyperbolic Sine Function Rerkratn, Apinai Tongcharoen, Jakkapun Petchmaneelumka, Wandee Riewruja, Vanchai Sensors (Basel) Article In this paper, a circuit technique to extend the measuring range of a linear variable differential transformer (LVDT) is proposed. The transfer characteristic of the LVDT contains the odd function form of the cubic polynomial. Therefore, the measuring range of a commercial LVDT is linear in a narrow range compared to its physical dimensions. The wide measuring range of the LVDT requires a large structure of the LVDT, which increases the scale and the cost of the measurement system. The measuring range of the LVDT can be linearly extended to the maximum of the stroke range using the proposed technique. The realization of the proposed technique is based on the use of the hyperbolic sine (sinh) function of the electronic circuit building block, named the class AB bipolar amplifier. The class AB bipolar amplifier can be obtained by the current feedback operational amplifier (CFOA). The circuit of the proposed technique requires two CFOAs and an operational transconductance amplifier (OTA) as the active devices and all devices used in the proposed technique to synthesize the sinh function are commercially available. The proposed technique exhibits an ability to compensate for the nonlinear characteristic of the LVDT without digital components. The proposed technique is attractive in terms of its simple circuit configuration, small size, and low cost. The linear range extension of the LVDT used in this paper is significantly increased with a maximum error of about 18.3 μm of 6.2 mm at the full stroke range or the full-scale percentage error of about 0.295%. The results indicate that the proposed technique provides excellent performance to extend the measuring range of the LVDT without modifying the LVDT structure. MDPI 2022-05-12 /pmc/articles/PMC9143317/ /pubmed/35632083 http://dx.doi.org/10.3390/s22103674 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rerkratn, Apinai
Tongcharoen, Jakkapun
Petchmaneelumka, Wandee
Riewruja, Vanchai
Linear-Range Extension for Linear Variable Differential Transformer Using Hyperbolic Sine Function
title Linear-Range Extension for Linear Variable Differential Transformer Using Hyperbolic Sine Function
title_full Linear-Range Extension for Linear Variable Differential Transformer Using Hyperbolic Sine Function
title_fullStr Linear-Range Extension for Linear Variable Differential Transformer Using Hyperbolic Sine Function
title_full_unstemmed Linear-Range Extension for Linear Variable Differential Transformer Using Hyperbolic Sine Function
title_short Linear-Range Extension for Linear Variable Differential Transformer Using Hyperbolic Sine Function
title_sort linear-range extension for linear variable differential transformer using hyperbolic sine function
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9143317/
https://www.ncbi.nlm.nih.gov/pubmed/35632083
http://dx.doi.org/10.3390/s22103674
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