Full-field NDT methods for investigation of paintings on poplar

The diagnostic of artworks represents a topic of high interest and at the same time a critical task. The development of effective tools based on advanced technologies for investigating and monitoring health-state of item of interest for cultural heritage is essential to assuring their preservation and restoration. In fact, detecting and preventing the formation of damages or assessing them for an accurate pre-restoration analysis are the main objectives of non-destructive investigation. In this study the combined use of Electronic Speckle Pattern Interferometry and Pulse Thermography Analysis, as complementary tools for cultural heritage artifacts diagnostics have been employed on poplar panels painted reproducing original painting methods adopted during the 16th and 17th centuries. Both techniques are full field, contactless, non-invasive and can provide relevant information about state of conservation. The concurrent investigations, allow to expand understanding the results of each individual technique, from which, in many cases, no exclusive assumption is possible. The applications include detection of detachments, micro-cracks, inclusions, and hidden damages. It is also possible the real time monitoring of the behaviour of the object according to the environment thermo-hygrometric changes. The porpoise of this work is to optimize the parameters of such NDT methods on the samples that were specially made by reproducing in high fidelity the structural properties and materials of the artwork. Results show that the employed diagnostic protocols, by speckle interferometry and pulse thermography, are a powerful tool in assessing the pre-restoration health-state and suitable for in situ analysis of wood artworks. Examples of analysis on different artworks are shown.

[1]  A. Klisińska‐Kopacz,et al.  Non-invasive spectroscopic methods for the identification of drawing materials used in XVIII century , 2020 .

[2]  P. Ferraro,et al.  Active Thermography for Non-invasive Inspection of an Artwork on Poplar Panel: Novel Approach Using Principal Component Thermography and Absolute Thermal Contrast , 2021 .

[3]  Xavier Maldague,et al.  Non-destructive Investigation of Paintings on Canvas by Continuous Wave Terahertz Imaging and Flash Thermography , 2017, Journal of Nondestructive Evaluation.

[4]  Xavier Maldague,et al.  Theory and Practice of Infrared Technology for Nondestructive Testing , 2001 .

[5]  Vittorio Bianco,et al.  Lock-in Thermography as a tool for the Detection of Damages in “Eco” Composite Materials , 2020, 2020 IEEE 7th International Workshop on Metrology for AeroSpace (MetroAeroSpace).

[6]  A Langella,et al.  Comparison between different non-destructive techniques methods to detect and characterize impact damage on composite laminates , 2020, Journal of Composite Materials.

[7]  Vittorio Bianco,et al.  Characterization of ‘green’ composite laminates after flexural tests by speckle interferometry , 2020 .

[8]  Vittorio Bianco,et al.  Leaks detection in stainless steel kegs via ESPI , 2018, Optics and Lasers in Engineering.

[9]  P. Ferraro,et al.  Evaluation of delaminated area of polymer/Carbon Nanotubes fiber reinforced composites after flexural tests by ESPI , 2014, 2014 IEEE Metrology for Aerospace (MetroAeroSpace).

[10]  I. A. Vasiliev,et al.  Combined holographic subsurface radar and infrared thermography for diagnosis of the conditions of historical structures and artworks , 2009 .

[11]  M. D. Robador,et al.  An innovative combination of non-invasive UV–Visible-FORS, XRD and XRF techniques to study Roman wall paintings from Seville, Spain , 2016 .

[12]  Luca Poletto,et al.  Non-invasive multitechnique methodology applied to the study of two 14th century canvases by Lorenzo Veneziano , 2013 .

[13]  Xavier Maldague,et al.  Holographic Interferometry (HI), Infrared Vision and X-Ray Fluorescence (XRF) spectroscopy for the assessment of painted wooden statues: a new integrated approach , 2014 .

[14]  Gokhan Kilic,et al.  Using advanced NDT for historic buildings: Towards an integrated multidisciplinary health assessment strategy , 2015 .

[15]  Gorjan Alagic,et al.  #p , 2019, Quantum information & computation.

[16]  Rong-Sheng Lu,et al.  A Review of Optical NDT Technologies , 2011, Sensors.

[17]  Michelle Dunn,et al.  The application of state-of-the-art technologies to support artwork conservation: Literature review , 2020 .