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Application of numerical procedure for thermal diagnostics of the delamination of strengthening material at concrete construction

Wojciech Piotr Adamczyk (Institute of Thermal Technology, Silesian University of Technology, Gliwice, Poland)
Marcin Gorski (Faculty of Civil Engineering, Department of Structural Engineering, Silesian University of Technology, Gliwice, Poland)
Ziemowit Ostrowski (Institute of Thermal Technology, Silesian University of Technology, Gliwice, Poland)
Ryszard Bialecki (Institute of Thermal Technology, Silesian University of Technology, Gliwice, Poland)
Grzegorz Kruczek (Department of Energy and Environmental Engineering, Politechnika Slaska, Gliwice, Poland)
Grzegorz Przybyła (Department of Energy and Environmental Engineering, Politechnika Slaska, Gliwice, Poland)
Rafal Krzywon (Silesian University of Technology, Gliwice, Poland)
Rafal Bialozor (Silesian University of Technology, Gliwice, Poland)

International Journal of Numerical Methods for Heat & Fluid Flow

ISSN: 0961-5539

Article publication date: 30 August 2019

Issue publication date: 30 April 2020

151

Abstract

Purpose

Large structural objects, primarily concrete bridges, can be reinforced by gluing to their stretched surface tapes of fiber-reinforced polymer (FRP). The condition for this technology to work requires the quality of the bonding of FRP and the concrete to be perfect. Possible defects may arise in the phase of construction but also as a result of long-term fatigue loads. These defects having different forms of voids and discontinuities in the bonding layer are difficult to detect by optical inspection. This paper aims to describe the development of a rapid and nondestructive method for quantitative assessment of the debonding between materials.

Design/methodology/approach

The applied technique belongs to the wide class of active infrared (IR) thermography, the principle of which is to heat (or cool) the investigated object, and determine the properties of interest from the recorded, by an IR camera, temperature field. The methodology implemented in this work is to uniformly heat for a few seconds, using a set of halogen lamps, the FRP surface attached to the concrete. The parameter of interest is the thermal resistance of the layer separating the polymer tape and the concrete. The presence of voids and debonding will result in large values of this resistance. Its value is retrieved by solving an inverse transient heat conduction problem. This is accomplished by minimizing, in the sense of least squares, the difference between the recorded and simulated temperatures. The latter is defined as a solution of a 1D transient heat conduction problem with the already mentioned thermal resistance treated as the only decision variable.

Findings

A general method has been developed, which detects debonding of the FRP tapes from the concrete. The method is rapid and nondestructive. Owing to a special selection of the compared dimensionless measured and simulated temperatures, the method is not sensitive to the surface quality (roughness and emissivity). Measurements and calculation may be executed within seconds. The efficiency of the technique has been shown at a sample, where the defects have been artificially introduced in a controlled manner.

Originality/value

A quantitative assessment procedure which can be used to determine the extent of the debonding has been developed. The procedure uses inverse technique whose result is the unknown thermal resistance between the member and the FRP strip.

Keywords

Citation

Adamczyk, W.P., Gorski, M., Ostrowski, Z., Bialecki, R., Kruczek, G., Przybyła, G., Krzywon, R. and Bialozor, R. (2020), "Application of numerical procedure for thermal diagnostics of the delamination of strengthening material at concrete construction", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 30 No. 5, pp. 2655-2668. https://doi.org/10.1108/HFF-04-2019-0278

Publisher

:

Emerald Publishing Limited

Copyright © 2019, Emerald Publishing Limited

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