Uncertainty of Thermographic Temperature Measurement with an Additional close-up Lens
Author:
Dziarski Krzysztof1, Hulewicz Arkadiusz2
Affiliation:
1. Institute of Electric Power Engineering , Poznan University of Technology , Piotrowo 3A, 60-965 Poznan , Poland 2. Institute of Electrical Engineering and Electronics , Poznan University of Technology , Piotrowo 3A, 60-965 Poznan , Poland
Abstract
Abstract
The thermographic temperature measurement is burdened with uncertainty. This non-contact temperature measurement method makes it possible to measure the temperature of the electrical device under load. When the observed object is small (a few square millimeters) the spatial resolution of the thermographic cameras is often insufficient. In this case, the use of the additional macro lens is needed. After using an additional lens, the uncertainty of the thermographic measurement is different from the uncertainty of thermographic measurement without an additional lens. The values of the uncertainty contributions depend on the conditions during the measurement and the used methodology. The authors constructed an uncertainty budget of thermographic temperature measurement with an additional macro lens, based on EA-4/02 (European Accreditation publications). The uncertainty contributions were also calculated. On the basis of the calculated values of the uncertainty contributions, it was determined which factor had the greatest impact on the value of the thermographic temperature measurement with an additional lens.
Publisher
Walter de Gruyter GmbH
Subject
Instrumentation,Biomedical Engineering,Control and Systems Engineering
Reference30 articles.
1. [1] Ferreira, R.A.M., Silva, B.P.A, Teixeira, G.G.D., Andrade, R.M., Porto, M.P. (2019). Uncertainty analysis applied to electrical components diagnosis by infrared thermography. Measurement, 132, 263-271.10.1016/j.measurement.2018.09.036 2. [2] Grégis, F. (2019). On the meaning of measurement uncertainty. Measurement, 133 (5), 41-46.10.1016/j.measurement.2018.09.073 3. [3] Varba, I., Palencar, R., Hadzistevic, M., Strbac, B., Spasic-Jokic, V., Hodolic, J. (2011). Compact vibration measuring system for in-vehicle applications. Measurement Science Review, 11 (5), 154-159. 4. [4] Palenčár, R., Sopkuliak, P., Palenčár, J., Ďuriš, S., Suroviak, E., Halaj, M. (2017). Application of Monte Carlo method for evaluation of uncertainties of ITS-90 by standard platinum resistance thermometer. Measurement Science Review, 3 (17), 108-116.10.1515/msr-2017-0014 5. [5] Usamentiaga, R., Fernandez, M.A., Villan, A.F., Carus, J.L. (2018). Temperature monitoring for electrical substations using infrared thermography: Architecture for industrial internet of things. IEEE Transactions on Industrial Informatics, 14 (12), 5667-5677.10.1109/TII.2018.2868452
Cited by
2 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|