An investigation of noise performance in optical lock-in thermography

被引:9
|
作者
Rajic, Nik [1 ]
Antolis, Cedric [1 ]
机构
[1] Def Sci & Technol Grp, 506 Lorimer St, Fishermans Bend, Vic 3207, Australia
关键词
Lock-in thermography; Modulated thermography; Microbolometer; Non-destructive inspection; NONDESTRUCTIVE EVALUATION; INSPECTION;
D O I
10.1016/j.infrared.2017.09.019
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
An investigation into the noise performance of optical lock-in thermography (OLT) is described. The study aims to clarify the influence of infrared detector type and key inspection parameters such as illumination strength and lock-in duration on the quality of OLT amplitude and phase imagery. The study compares the performance of a state-of-the-art cooled photon detector with several lower-cost microbolometers. The results reveal a significant noise performance advantage to the photon detector. Under certain inspection regimes the advantage with respect to phase image quality is disproportionately high relative to detector sensitivities. This is shown to result from an explicit dependence in the phase signal variance on the ratio between the signal amplitude and the detector sensitivity. While this finding supports the preferred use of photon detectors for OLT inspections, it does not exclude microbolometers from a useful role. In cases where the significantly lower capital cost and improved practicality of microbolometers provide an advantage it is shown that performance shortfalls can be overcome with a relatively small factorial increase in optical illumination intensity. Crown Copyright (C) 2017 Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:1 / 10
页数:10
相关论文
共 50 条
  • [21] Lock-in inductive thermography for surface crack detection
    Oswald-Tranta, Beata
    THERMOSENSE: THERMAL INFRARED APPLICATIONS XL, 2018, 10661
  • [22] Non-destructive evaluation of bonded structures with lock-in thermography
    Meola, C
    Carlomagno, GM
    Giorleo, L
    JOURNAL OF ADHESION SCIENCE AND TECHNOLOGY, 2003, 17 (09) : 1207 - 1222
  • [23] Lock-in thermography for investigating solar cells and materials
    Breitenstein, Otwin
    QUANTITATIVE INFRARED THERMOGRAPHY JOURNAL, 2010, 7 (02) : 147 - 165
  • [24] Lock-In Thermography to Analyze Plasmonic Nanoparticle Dispersions
    Steinmetz, Lukas
    Taladriz-Blanco, Patricia
    Geers, Christoph
    Spuch-Calvar, Miguel
    Bonmarin, Mathias
    Balog, Sandor
    Rothen-Rutishauser, Barbara
    Petri-Fink, Alke
    PARTICLE & PARTICLE SYSTEMS CHARACTERIZATION, 2019, 36 (09)
  • [25] A new measurement method of coatings thickness based on lock-in thermography
    Zhang, Jin-Yu
    Meng, Xiang-bin
    Ma, Yong-chao
    INFRARED PHYSICS & TECHNOLOGY, 2016, 76 : 655 - 660
  • [26] Phase Lock-In Thermography for Metal Walls Characterization
    Quoc, S. Pham Tu
    Cheymol, G.
    Semerok, A.
    2013 3RD INTERNATIONAL CONFERENCE ON ADVANCEMENTS IN NUCLEAR INSTRUMENTATION, MEASUREMENT METHODS AND THEIR APPLICATIONS (ANIMMA), 2013,
  • [28] The Impact of Excitation Periods on the Outcome of Lock-In Thermography
    Sapieta, Milan
    Dekys, Vladimir
    Kopas, Peter
    Jakubovicova, Lenka
    Savrnoch, Zdenko
    MATERIALS, 2023, 16 (07)
  • [29] Development of LabVIEW Program for Lock-In Infrared Thermography
    Min, Taehoon
    Na, Hyungchul
    Kim, Nohyu
    JOURNAL OF THE KOREAN SOCIETY FOR NONDESTRUCTIVE TESTING, 2011, 31 (02) : 127 - 133
  • [30] Lock-in thermography and related topics in photovoltaic research
    Breitenstein, Otwin
    DEFECTS-RECOGNITION, IMAGING AND PHYSICS IN SEMICONDUCTORS XIV, 2012, 725 : 115 - 122