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Design and Shape Optimization of Strain Gauge Load Cell for Axial Force Measurement for Test Benches

The load cell is an indispensable component of many engineering machinery and industrial automation for measuring and sensing force and torque. This paper describes the design and analysis of the strain gauge load cell, from the conceptional design stage to shape optimization (based on the finite el...

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Autores principales: Al-Dahiree, Omar Sabah, Tokhi, Mohammad Osman, Hadi, Nabil Hassan, Hmoad, Nassar Rasheid, Ghazilla, Raja Ariffin Raja, Yap, Hwa Jen, Albaadani, Emad Abdullah
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9571206/
https://www.ncbi.nlm.nih.gov/pubmed/36236608
http://dx.doi.org/10.3390/s22197508
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author Al-Dahiree, Omar Sabah
Tokhi, Mohammad Osman
Hadi, Nabil Hassan
Hmoad, Nassar Rasheid
Ghazilla, Raja Ariffin Raja
Yap, Hwa Jen
Albaadani, Emad Abdullah
author_facet Al-Dahiree, Omar Sabah
Tokhi, Mohammad Osman
Hadi, Nabil Hassan
Hmoad, Nassar Rasheid
Ghazilla, Raja Ariffin Raja
Yap, Hwa Jen
Albaadani, Emad Abdullah
author_sort Al-Dahiree, Omar Sabah
collection PubMed
description The load cell is an indispensable component of many engineering machinery and industrial automation for measuring and sensing force and torque. This paper describes the design and analysis of the strain gauge load cell, from the conceptional design stage to shape optimization (based on the finite element method (FEM) technique) and calibration, providing ample load capacity with low-cost material (aluminum 6061) and highly accurate force measurement. The amplifier circuit of the half Wheatstone bridge configuration with two strain gauges was implemented experimentally with an actual load cell prototype. The calibration test was conducted to evaluate the load cell characteristics and derive the governing equation for sensing the unknown load depending on the measured output voltage. The measured sensitivity of the load cell is approximately 15 mV/N and 446.8 µV/V at a maximum applied load of 30 kg. The findings are supported by FEM results and experiments with an acceptable percentage of errors, which revealed an overall error of 6% in the worst situation. Therefore, the proposed load cell meets the design considerations for axial force measurement for the laboratory test bench, which has a light weight of 20 g and a maximum axial force capacity of 300 N with good sensor characteristics.
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spelling pubmed-95712062022-10-17 Design and Shape Optimization of Strain Gauge Load Cell for Axial Force Measurement for Test Benches Al-Dahiree, Omar Sabah Tokhi, Mohammad Osman Hadi, Nabil Hassan Hmoad, Nassar Rasheid Ghazilla, Raja Ariffin Raja Yap, Hwa Jen Albaadani, Emad Abdullah Sensors (Basel) Article The load cell is an indispensable component of many engineering machinery and industrial automation for measuring and sensing force and torque. This paper describes the design and analysis of the strain gauge load cell, from the conceptional design stage to shape optimization (based on the finite element method (FEM) technique) and calibration, providing ample load capacity with low-cost material (aluminum 6061) and highly accurate force measurement. The amplifier circuit of the half Wheatstone bridge configuration with two strain gauges was implemented experimentally with an actual load cell prototype. The calibration test was conducted to evaluate the load cell characteristics and derive the governing equation for sensing the unknown load depending on the measured output voltage. The measured sensitivity of the load cell is approximately 15 mV/N and 446.8 µV/V at a maximum applied load of 30 kg. The findings are supported by FEM results and experiments with an acceptable percentage of errors, which revealed an overall error of 6% in the worst situation. Therefore, the proposed load cell meets the design considerations for axial force measurement for the laboratory test bench, which has a light weight of 20 g and a maximum axial force capacity of 300 N with good sensor characteristics. MDPI 2022-10-03 /pmc/articles/PMC9571206/ /pubmed/36236608 http://dx.doi.org/10.3390/s22197508 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
Al-Dahiree, Omar Sabah
Tokhi, Mohammad Osman
Hadi, Nabil Hassan
Hmoad, Nassar Rasheid
Ghazilla, Raja Ariffin Raja
Yap, Hwa Jen
Albaadani, Emad Abdullah
Design and Shape Optimization of Strain Gauge Load Cell for Axial Force Measurement for Test Benches
title Design and Shape Optimization of Strain Gauge Load Cell for Axial Force Measurement for Test Benches
title_full Design and Shape Optimization of Strain Gauge Load Cell for Axial Force Measurement for Test Benches
title_fullStr Design and Shape Optimization of Strain Gauge Load Cell for Axial Force Measurement for Test Benches
title_full_unstemmed Design and Shape Optimization of Strain Gauge Load Cell for Axial Force Measurement for Test Benches
title_short Design and Shape Optimization of Strain Gauge Load Cell for Axial Force Measurement for Test Benches
title_sort design and shape optimization of strain gauge load cell for axial force measurement for test benches
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9571206/
https://www.ncbi.nlm.nih.gov/pubmed/36236608
http://dx.doi.org/10.3390/s22197508
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