The Combined Relative Uncertainty of Measurement Results by Prototype Semi-Automated Calorimetric Chamber

Author:

Kušnerová Milena1,Valíček Jan12,Harničárová Marta12,Kmec Jan1,Řepka Michal1,Danel Roman1,Panda Anton3,Palková Zuzana12

Affiliation:

1. Department of Mechanical Engineering, Faculty of Technology, Institute of Technology and Business in České Budějovice, Okružní 10, 370 01 České Budějovice , Czech Republic

2. Department of Electrical Engineering, Automation and Informatics, Faculty of Engineering , Slovak University of Agriculture in Nitra , Trieda Andreja Hlinku 609/2, 949 76 Nitra

3. Department of Automobile and Manufacturing Technologies, Faculty of Manufacturing Technologies with a Seat in Prešov , Technical University of Košice , Bayerova 1, 080 01 Prešov , Slovakia

Abstract

Abstract The paper presents an evaluation of the combined relative uncertainty of the result of direct step temperature measurements aimed at evaluation of the indirect measurements of the specific thermal capacity of the heat insulating concrete by means of a pair of resistive cable thermometers fitted with Pt100 temperature sensors and integrated into a computer-controlled calorimetric chamber. In particular, it is a proposal of evaluation of the overall relative uncertainty of the measurement of partial temperatures measured in equidistant time steps, in a relatively wider time interval. In practice, the uncertainty of the result of step temperature measurements is most often declared only by the instrument uncertainty specified by the manufacturer. The exact evaluation of the result of the measurements of thermal and temperature material parameters measured by the calorimetric comparison method is required by the fact that the investigated samples are made of newly designed non-tabulated building materials and that the measurements are made by a prototype device.

Publisher

Walter de Gruyter GmbH

Subject

Instrumentation,Biomedical Engineering,Control and Systems Engineering

Reference18 articles.

1. [1] Joint Committee for Guides in Metrology. (2008). Evaluation of measurement data — Guide to the expression of uncertainty in measurement, 1st edition. JCGM 100:2008.

2. [2] Joint Committee for Guides in Metrology. (2012). International vocabulary of metrology - Basic and general concepts and associated terms (VIM). JCGM 200:2012.

3. [3] International Electrotechnical Commission. (2001). Electrical and electronic measurement equipment – Expression of performance. IEC 60359:2001.

4. [4] Ehrlich, C., Dybkaer, R., Wöger, W. (2007). Evolution of philosophy and description of measurement (preliminary rationale for VIM3). NCSLI Measure, 2 (1), 30-43.10.1080/19315775.2007.11721356

5. [5] Taylor, J.R. (1997). An Introduction to Error Analysis: The Study of Uncertainties in Physical Measurements. Second Edition. University Science Books.

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