Wissenschaftliche Artikel der BAM
Locating and sizing delaminations is a common inspection task in the maintenance and quality control of construction and rehabilitation. Their detection is an important area of application of nondestructive testing in civil engineering (NDT-CE). To improve this application, NDT test systems and test solutions must be compared, for which specimens containing well-defined delaminations are needed to serve as a reference. Currently, there are no widely accepted procedures available for creating such flaws locally and reproducibly. This study presents procedures for creating artificial delaminations repeatably and as close as possible to natural delaminations. To produce the discontinuities only substances were used which can occur in concrete components and do not affect the application of NDT-CE methods. Ultrasonic pulse-echo (UPE) was used to test the flaws in the specimens. The delaminations were created by applying expansive mortar in prepared through holes. Three specimens with two delaminations each were built and tested using UPE.
Material defects in fiber reinforced polymers such as delaminations can rapidly degrade the material properties or can lead to the failure of a component. Pulse thermography (PT) has proven to be a valuable tool to identify and quantify such defects in opaque materials. However, quantification of delaminations within semitransparent materials is extremely challenging. We present an approach to quantify delaminations within materials being semitransparent within the wavelength ranges of the optical excitation sources as well as of the infrared (IR) camera. PT experimental data of a glass fiber reinforced polymer with a real delamination within the material were reconstructed by one dimensional (1D) mathematical models. These models describe the heat diffusion within the material and consider semitransparency to the excitation source as well to the IR camera, thermal losses at the samples surfaces and a thermal contact resistance between the two layers describing the delamination. By fitting the models to the PT data, we were able to determine the depth of the delamination very accurately. Additionally, we analyzed synthetic PT data from a 2D simulation with our 1D-models to show how the thermal contact resistance is influenced by lateral heat flow within the material.
Charakterisierung einer durch Überlast geschädigten GFK-Platte mit Thermografie und Ultraschall
(2013)
Eine GFK-Platte mit eingefräster Nut wurde in einem Zugversuch mit
ca. 90 kN belastet, was zu einer sichtbaren Veränderung an den Seitenflächen führte.
Anschließend wurde die Platte mit Ultraschall und Thermografie auf innere Schädigungen untersucht. Beide Verfahren konnten räumlich ausgedehnte Bereiche mit zahlreichen Anzeigen nachweisen, jedoch keine geschlossene Fläche. Mit UT wurden außerdem porenreiche oberflächennahe Schichten in dem Material detektiert. Diese Poren verringerten die Nachweisempfindlichkeit beider Messverfahren.