Evaluation of image reconstruction algorithms for non-destructive characterization of thermal interfaces

被引:12
|
作者
Erturk, Hakan [1 ]
机构
[1] Bogazici Univ, Dept Mech Engn, TR-34342 Istanbul, Turkey
关键词
Thermal tomography; Thermal interface; Fault detection; Non-destructive testing; Inverse problem; Regularization; Singular value decomposition; INVERSE PROBLEM; CONDUCTIVITY; TOMOGRAPHY;
D O I
10.1016/j.ijthermalsci.2011.02.002
中图分类号
O414.1 [热力学];
学科分类号
摘要
Thermal interfaces are encountered in many thermal management applications and interface materials are used to minimize thermal contact resistance resulting from solid solid contact. For opto-electronic devices the quality of the thermal interface is critical for removing the generated heat for proper thermal management. Defects in the thermal interface introduce additional thermal resistance in the thermal path, and must be prevented. Detection of defects in the thermal interfaces becomes critical during the assembly process development. Imaging techniques such as X-ray computerized tomography, or scanning acoustic microscopy that require expensive equipment and significant processing time is necessary. Thermal tomography in conjunction to IR thermometry can be used as a lower cost alternative to these techniques. The feasibility of thermal tomography for non-destructive characterization of thermal interfaces is presented by considering different image reconstruction algorithms. The algorithms considered are the iterative perturbation algorithm, Levenberg-Marquardt algorithm and the regularized Newton Gauss algorithm, and they were found to be capable of characterizing the thermal interface layer. (C) 2011 Elsevier Masson SAS. All rights reserved.
引用
收藏
页码:906 / 917
页数:12
相关论文
共 50 条
  • [21] Non-Destructive Possibilities of Thermal Performance Evaluation of the External Walls
    Nowak, Henryk
    Nowak, Lukasz
    MATERIALS, 2021, 14 (23)
  • [22] Evaluation of the Thermal Expansion Coefficient Using Non-Destructive Testing
    Zhutovsky, Semion
    Kovler, Konstantin
    CONCREEP 10: MECHANICS AND PHYSICS OF CREEP, SHRINKAGE, AND DURABILITY OF CONCRETE AND CONCRETE STRUCTURES, 2015, : 1137 - 1146
  • [23] Thermal Impedance Spectroscopy for Non-Destructive Evaluation of Power Cycling
    Grieger, Folkhart
    Lindemann, Andreas
    2015 IEEE 6TH INTERNATIONAL SYMPOSIUM ON POWER ELECTRONICS FOR DISTRIBUTED GENERATION SYSTEMS (PEDG), 2015, : 173 - 178
  • [24] Non-destructive evaluation of thermal embrittlement of duplex stainless steel
    Kawaguchi, Y
    Matsubara, S
    Imanaka, T
    Yokono, Y
    Suetsugu, J
    NDE IN THE NUCLEAR AND PRESSURE VESSEL INDUSTRIES, 1997, : 201 - 206
  • [25] Non-destructive ultrasonic evaluation of thermal damage in cementitious materials
    Masse, S
    Vetter, G
    Boch, P
    EURO CERAMICS VII, PT 1-3, 2002, 206-2 : 1907 - 1910
  • [26] Application of neural network computing to thermal non-destructive evaluation
    G. Manduchi
    S. Marinetti
    P. Bison
    E. Grinzato
    Neural Computing & Applications, 1997, 6 : 148 - 157
  • [27] Modeling of thermal non-destructive evaluation techniques for composite materials
    Marinetti, S
    Muscio, A
    Bison, PG
    Grinzato, E
    THERMOSENSE XXII, 2000, 4020 : 164 - 173
  • [28] NON-DESTRUCTIVE EVALUATION AND IMAGING WITH OPTICALLY GENERATED THERMAL WAVES
    BUSSE, G
    IEEE TRANSACTIONS ON SONICS AND ULTRASONICS, 1983, 30 (03): : 227 - 227
  • [29] Non-destructive evaluation of fatigue by thermal, acoustic and electromagnetic techniques
    Matsumoto, Eiji
    11TH INTERNATIONAL CONFERENCE ON THE MECHANICAL BEHAVIOR OF MATERIALS (ICM11), 2011, 10 : 3656 - 3661
  • [30] Application of neural network computing to thermal non-destructive evaluation
    Manduchi, G
    Marinetti, S
    Bison, P
    Grinzato, E
    NEURAL COMPUTING & APPLICATIONS, 1997, 6 (03): : 148 - 157