In the field of non-destructive evaluation, defect detection and visualization can be performed exploiting different techniques relying either on an active or a passive approach. In the following paper the passive technique is investigated due to its numerous advantages and its application to thermography is explored.In previous works, it has been shown that it is possible to reconstruct the Green's function between any pair of points of a sensing grid by using noise originated from diffuse fields in acoustic environments. The extraction of the Green's function can be achieved by cross-correlating these random recorded waves. Averaging, filtering and length of the measured signals play an important role in this process. This concept is here applied in an NDE perspective utilizing thermal fluctuations present on structural materials. Temperature variations interacting with thermal properties of the specimen allow for the characterization of the material and its health condition. The exploitation of the thermographic image resolution as a dense grid of sensors constitutes the basic idea underlying passive thermography. Particular attention will be placed on the creation of a proper diffuse thermal field, studying the number, placement and excitation signal of heat sources. Results from numerical simulations will be presented to assess the capabilities and performances of the passive thermal technique devoted to defect detection and imaging of structural components.

Extraction of thermal Green's function using diffuse fields: A passive approach applied to thermography / Capriotti, M.; Sternini, S.; Lanza Di Scalea, F.; Mariani, S.. - STAMPA. - 9803:(2016), pp. 98030U.1-98030U.9. (Intervento presentato al convegno Conference on Sensors and Smart Structures Technologies for Civil, Mechanical, and Aerospace Systems tenutosi a Las Vegas, NV, USA nel MAR 21-24, 2016) [10.1117/12.2218998].

Extraction of thermal Green's function using diffuse fields: A passive approach applied to thermography

Mariani, S.
Ultimo
2016

Abstract

In the field of non-destructive evaluation, defect detection and visualization can be performed exploiting different techniques relying either on an active or a passive approach. In the following paper the passive technique is investigated due to its numerous advantages and its application to thermography is explored.In previous works, it has been shown that it is possible to reconstruct the Green's function between any pair of points of a sensing grid by using noise originated from diffuse fields in acoustic environments. The extraction of the Green's function can be achieved by cross-correlating these random recorded waves. Averaging, filtering and length of the measured signals play an important role in this process. This concept is here applied in an NDE perspective utilizing thermal fluctuations present on structural materials. Temperature variations interacting with thermal properties of the specimen allow for the characterization of the material and its health condition. The exploitation of the thermographic image resolution as a dense grid of sensors constitutes the basic idea underlying passive thermography. Particular attention will be placed on the creation of a proper diffuse thermal field, studying the number, placement and excitation signal of heat sources. Results from numerical simulations will be presented to assess the capabilities and performances of the passive thermal technique devoted to defect detection and imaging of structural components.
2016
SENSORS AND SMART STRUCTURES TECHNOLOGIES FOR CIVIL, MECHANICAL, AND AEROSPACE SYSTEMS 2016
1
9
Extraction of thermal Green's function using diffuse fields: A passive approach applied to thermography / Capriotti, M.; Sternini, S.; Lanza Di Scalea, F.; Mariani, S.. - STAMPA. - 9803:(2016), pp. 98030U.1-98030U.9. (Intervento presentato al convegno Conference on Sensors and Smart Structures Technologies for Civil, Mechanical, and Aerospace Systems tenutosi a Las Vegas, NV, USA nel MAR 21-24, 2016) [10.1117/12.2218998].
Capriotti, M.; Sternini, S.; Lanza Di Scalea, F.; Mariani, S.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/923203
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