Precision Temperature Measurement and Error Analysis for Three-Wire PT100 Resistance Temperature Detector (RTD) using LTSpice

This work focuses on temperature measurement and error extraction for Resistance Temperature Dependence (RTD). RTD is notable for its high accuracy, linearity, and stability. However, obtaining a system error of less than unity in RTD is critical. A platinum RTD is an ideal option if the system requ...

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Published in:Journal of Advanced Research in Fluid Mechanics and Thermal Sciences
Main Author: Saad P.S.M.; Halim N.A.H.A.; Zulkefle H.; Ahmad N.; Sivaraju S.S.
Format: Article
Language:English
Published: Semarak Ilmu Publishing 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85199753177&doi=10.37934%2farfmts.118.2.148159&partnerID=40&md5=49051894929890754fc7e1b32de940ff
id 2-s2.0-85199753177
spelling 2-s2.0-85199753177
Saad P.S.M.; Halim N.A.H.A.; Zulkefle H.; Ahmad N.; Sivaraju S.S.
Precision Temperature Measurement and Error Analysis for Three-Wire PT100 Resistance Temperature Detector (RTD) using LTSpice
2024
Journal of Advanced Research in Fluid Mechanics and Thermal Sciences
118
2
10.37934/arfmts.118.2.148159
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85199753177&doi=10.37934%2farfmts.118.2.148159&partnerID=40&md5=49051894929890754fc7e1b32de940ff
This work focuses on temperature measurement and error extraction for Resistance Temperature Dependence (RTD). RTD is notable for its high accuracy, linearity, and stability. However, obtaining a system error of less than unity in RTD is critical. A platinum RTD is an ideal option if the system requires an accuracy level over a wide temperature range (-200°C to +800°C). Therefore, this work investigated the temperature measurement and extraction of error in RTD by simulating a three-wired PT100 RTD using LTSpice. The analytical calculations were also developed to demonstrate the RTD’s error and were compared with the simulation results for verification purposes. It was discovered that the optimized temperature measurement and percentage errors are 0.01°C and 0.004% respectively. The values of Vc, Sense Resistor (RSENSE), and Reference Resistor (RREF) for the excitation current were found to be significant to maximize the output voltage and mean absolute error (MAE) on the test set, offering insights into the model's overall fit, average deviation, and sensitivity to outliers. Results reveal strong correlations between PV module temperature, irradiance, and AC power generated. © 2024, Semarak Ilmu Publishing. All rights reserved.
Semarak Ilmu Publishing
22897879
English
Article

author Saad P.S.M.; Halim N.A.H.A.; Zulkefle H.; Ahmad N.; Sivaraju S.S.
spellingShingle Saad P.S.M.; Halim N.A.H.A.; Zulkefle H.; Ahmad N.; Sivaraju S.S.
Precision Temperature Measurement and Error Analysis for Three-Wire PT100 Resistance Temperature Detector (RTD) using LTSpice
author_facet Saad P.S.M.; Halim N.A.H.A.; Zulkefle H.; Ahmad N.; Sivaraju S.S.
author_sort Saad P.S.M.; Halim N.A.H.A.; Zulkefle H.; Ahmad N.; Sivaraju S.S.
title Precision Temperature Measurement and Error Analysis for Three-Wire PT100 Resistance Temperature Detector (RTD) using LTSpice
title_short Precision Temperature Measurement and Error Analysis for Three-Wire PT100 Resistance Temperature Detector (RTD) using LTSpice
title_full Precision Temperature Measurement and Error Analysis for Three-Wire PT100 Resistance Temperature Detector (RTD) using LTSpice
title_fullStr Precision Temperature Measurement and Error Analysis for Three-Wire PT100 Resistance Temperature Detector (RTD) using LTSpice
title_full_unstemmed Precision Temperature Measurement and Error Analysis for Three-Wire PT100 Resistance Temperature Detector (RTD) using LTSpice
title_sort Precision Temperature Measurement and Error Analysis for Three-Wire PT100 Resistance Temperature Detector (RTD) using LTSpice
publishDate 2024
container_title Journal of Advanced Research in Fluid Mechanics and Thermal Sciences
container_volume 118
container_issue 2
doi_str_mv 10.37934/arfmts.118.2.148159
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85199753177&doi=10.37934%2farfmts.118.2.148159&partnerID=40&md5=49051894929890754fc7e1b32de940ff
description This work focuses on temperature measurement and error extraction for Resistance Temperature Dependence (RTD). RTD is notable for its high accuracy, linearity, and stability. However, obtaining a system error of less than unity in RTD is critical. A platinum RTD is an ideal option if the system requires an accuracy level over a wide temperature range (-200°C to +800°C). Therefore, this work investigated the temperature measurement and extraction of error in RTD by simulating a three-wired PT100 RTD using LTSpice. The analytical calculations were also developed to demonstrate the RTD’s error and were compared with the simulation results for verification purposes. It was discovered that the optimized temperature measurement and percentage errors are 0.01°C and 0.004% respectively. The values of Vc, Sense Resistor (RSENSE), and Reference Resistor (RREF) for the excitation current were found to be significant to maximize the output voltage and mean absolute error (MAE) on the test set, offering insights into the model's overall fit, average deviation, and sensitivity to outliers. Results reveal strong correlations between PV module temperature, irradiance, and AC power generated. © 2024, Semarak Ilmu Publishing. All rights reserved.
publisher Semarak Ilmu Publishing
issn 22897879
language English
format Article
accesstype
record_format scopus
collection Scopus
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