Published December 10, 2012 | Version v1
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Methodologies for modeling thin layers and displacement in non-destructive testing by eddy currents: application to flexible sensors

Description

The objective of this thesis is the development of modeling tools for eddy current testing (ECT). Currently there is a tendency to use flexible sensors which represent a viable solution for inspecting parts with a complex surface. The main objective of this thesis is the development of techniques for taking into account this kind of sensors within the finite element method (FEM). When modeling a flexible sensor with the FEM, three issues have to be considered. The first one is related to the mesh of thin regions that appear in this kind of configuration (sensor-inspected part distance, thin coating...). The meshing of these regions with simplicial elements can cause numerical problems (distorted elements when a coarse mesh is considered and high number of unknowns when a fine mesh is used). The second issue is related to the displacement of the sensor on the part surface. If the different sub-domains (air, part, sensor...) are properly re-meshed for each position of the sensor, the required time can be penalizing. The third issue, related to the modeling of a flexible sensor, is the computation of the current in distorted sensor coils. A comparison of different approaches has led to select the overlapping element method, which allows to simultaneously consider the thin regions with nonconforming meshes. This method allows to perform the connection of two surfaces which can be non-planar and/or have different geometries. The overlapping method has been implemented in two dual formulations (magnetic and electric) in 2D and 3D and integrated in the computation code (C++) DOLMEN of LGEP. The overlapping method has been validated for several kinds of thin regions (air, conductive regions, magnetic regions, flat coils...). The modeling of flexible sensors also requires the establishment of a technique for properly imposing the current in an inductor of arbitrary shape. A technique has been selected and implemented for conventional (volumic) distorted coils but also for flexible flat coils. Different test configurations have been considered in order to validate the developments and the results have been compared with analytical references or experimental solutions. (author)

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Additional details

Additional titles

Original title (French)
Methodologies pour la modelisation des couches fines et du deplacement en controle non destructif par courants de Foucault: application aux capteurs souples

Publishing Information

Imprint Pagination
186 p.
Report number
FRNC-TH--8342

INIS

Country of Publication
France
Country of Input or Organization
France
INIS RN
44052530
Subject category
S42: ENGINEERING;
Resource subtype / Literary indicator
Thesis
Descriptors DEI
COMPUTERIZED SIMULATION; D CODES; EDDY CURRENTS; FINITE ELEMENT METHOD; MAGNETOHYDRODYNAMICS; NONDESTRUCTIVE TESTING; SENSORS
Descriptors DEC
CALCULATION METHODS; COMPUTER CODES; CURRENTS; ELECTRIC CURRENTS; FLUID MECHANICS; HYDRODYNAMICS; MATERIALS TESTING; MATHEMATICAL SOLUTIONS; MECHANICS; NUMERICAL SOLUTION; SIMULATION; TESTING

Optional Information

Notes
[110 refs.]; Available from Bibliotheque universitaire de Sciences Domaine universitaire Batiment 407 Cedex 91405 Orsay (France); Also available from the INIS Liaison Officer for France, see the 'INIS contacts' section of the INIS-NKM website for current contact and E-mail addresses: http://www.iaea.org/inis/Contacts/