Evaluation of coating thickness by thermal wave imaging: A comparative study of pulsed and lock-in infrared thermography - Part I: Simulation

被引:62
作者
Shrestha, Ranjit [1 ]
Kim, Wontae [1 ]
机构
[1] Kongju Natl Univ, Dept Mech Engn, 1223-24 Cheonan Daero, Cheonan Si 31080, Chungcheongnam, South Korea
基金
新加坡国家研究基金会;
关键词
Thermal barrier coating; Thermal wave imaging; Pulsed thermography; Lock-in thermography; Fourier transform; SUBSURFACE DEFECTS; PHASE THERMOGRAPHY; OXIDE LAYER; COMPOSITES; DEPTH; QUANTIFICATION;
D O I
10.1016/j.infrared.2017.04.016
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
This paper investigates the possibilities of evaluating non-uniform coating thickness using thermal wave imaging method. A comparative study of pulsed thermography (PT) and lock-in thermography (LIT) based on evaluating the accuracy of predicted coating thickness is presented. In this study, a transient thermal finite element model was created in ANSYS 15. A single square pulse heating for PT and a sinusoidal heating at different modulation frequencies for LIT were used to stimulate the sample according to the experimental procedures. The response of thermally excited surface was recorded and data processing with Fourier transform was carried out to obtain the phase angle. Then calculated phase angle was correlated with the coating thickness. The method demonstrated potential in the evaluation of coating thickness and was successfully applied to measure the non-uniform top layers ranging from 0.1 mm to 0.6 mm; within an accuracy of 0.0003-0.0023 mm for PT and 0.0003-0.0067 mm for LIT. The simulation model enabled a better understanding of PT and LIT and provided a means of establishing the required experimental set-up parameters. This also led to optimization of experimental configurations, thus limiting the number of physical tests necessary. (C) 2017 Elsevier B.V. All rights reserved.
引用
收藏
页码:124 / 131
页数:8
相关论文
共 41 条
[1]   Comparison and analysis of non-destructive testing techniques suitable for delamination inspection in wind turbine blades [J].
Amenabar, I. ;
Mendikute, A. ;
Lopez-Arraiza, A. ;
Lizaranzu, M. ;
Aurrekoetxea, J. .
COMPOSITES PART B-ENGINEERING, 2011, 42 (05) :1298-1305
[2]  
[Anonymous], 2013, COMPOSITES B, DOI DOI 10.1016/J.COMPOSITESB.2012.09.006
[3]  
Bison P G, 2003, INSPECTING THERMAL B, P318
[4]   Infrared thermography measurement of the thermal parameters (effusivity, diffusivity and conductivity) of materials [J].
Boue, Christine ;
Fournier, Daniele .
QIRT JOURNAL, 2009, 6 (02) :175-188
[5]   Analysis of several test methods about heat insulation capabilities of ceramic thermal barrier coatings [J].
Chen Dong ;
Chu Zuo-ming ;
Zhang Qiang .
INTERNATIONAL FEDERATION FOR HEAT TREATMENT AND SURFACE ENGINEERING (20TH CONGRESS), 2013, 50 :248-252
[6]   Quantitative determination of a subsurface defect of reference specimen by lock-in infrared thermography [J].
Choi, Manyong ;
Kang, Kisoo ;
Park, Jeonghak ;
Kim, Wontae ;
Kim, Koungsuk .
NDT & E INTERNATIONAL, 2008, 41 (02) :119-124
[7]   Hardware and Software for Thermal Nondestructive Testing of Metallic and Composite Materials [J].
Chulkov, A. O. ;
Vavilov, V. P. .
III ALL-RUSSIAN SCIENTIFIC AND PRACTICAL CONFERENCE ON INNOVATIONS IN NON-DESTRUCTIVE TESTING (SIBTEST 2015), 2016, 671
[8]  
Ciniviz M., 2012, CERAMIC COATING APPL
[9]   Thermal-barrier coatings for more efficient gas-turbine engines [J].
Clarke, David R. ;
Oechsner, Matthias ;
Padture, Nitin P. .
MRS BULLETIN, 2012, 37 (10) :891-902
[10]  
Czichos H., 2013, Handbook of technical diagnostics: fundamentals and application to structures and systems