Research on Algorithm to Improve Accuracy of Temperature Measurement of Moving Strong Reflector
Author(s) -
Shaoliang Wei,
Yuanjia Yang,
Fengyu Cheng
Publication year - 2021
Publication title -
journal of sensors
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.399
H-Index - 43
eISSN - 1687-7268
pISSN - 1687-725X
DOI - 10.1155/2021/4965615
Subject(s) - compensation (psychology) , reflector (photography) , rotation (mathematics) , temperature measurement , accuracy and precision , work (physics) , field (mathematics) , infrared , measure (data warehouse) , surface (topology) , thermal , mechanical engineering , materials science , computer science , acoustics , optics , engineering , computer vision , mathematics , physics , psychology , light source , statistics , geometry , quantum mechanics , database , meteorology , psychoanalysis , pure mathematics
The roll is necessary and important equipment in aluminum processing, and its surface temperature will change its thermal expansion. The gap shape between rolls will change accordingly, affecting the quality of aluminum products. Therefore, it is important to monitor and control the roll surface temperature. The roller is a highly reflective body that rotates continuously during work. This article proposes an infrared temperature sensor to measure its surface temperature. Through field investigation and a literature review, we know that a roller’s motion will affect the accuracy of its surface temperature measurement. An infrared temperature measurement compensation algorithm based on rotation speed is constructed to eliminate this influence. Experimental results show that this method can make up for the temperature measurement error caused by the change of rotation speed and hence improve measurement accuracy. The algorithm is simple and adaptable and provides a new method to improve the accuracy of temperature measurement given speed change.
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