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超声红外热波技术的研究现状

冯辅周, 张超省, 张丽霞, 闵庆旭

冯辅周, 张超省, 张丽霞, 闵庆旭. 超声红外热波技术的研究现状[J]. 无损检测, 2012, 34(9): 46-49.
引用本文: 冯辅周, 张超省, 张丽霞, 闵庆旭. 超声红外热波技术的研究现状[J]. 无损检测, 2012, 34(9): 46-49.
FENG Fu-Zhou, ZHANG Chao-Sheng, ZHANG Li-Xia, Min Qing-Xu. Research Situation of Ultrasonic Infrared Thermal Wave Technology[J]. Nondestructive Testing, 2012, 34(9): 46-49.
Citation: FENG Fu-Zhou, ZHANG Chao-Sheng, ZHANG Li-Xia, Min Qing-Xu. Research Situation of Ultrasonic Infrared Thermal Wave Technology[J]. Nondestructive Testing, 2012, 34(9): 46-49.

超声红外热波技术的研究现状

详细信息
    作者简介:

    冯辅周(1971-),博士,教授,主要研究方向为装备故障诊断与状态监测。

  • 中图分类号: TP206;TG115.28

Research Situation of Ultrasonic Infrared Thermal Wave Technology

  • 摘要: 超声红外热波技术是一种新型无损检测技术,对金属试件疲劳裂纹、复合材料冲击损伤等缺陷具有良好的检测效果。简述了超声红外热波检测技术的基本原理及特点,然后从试验研究、理论研究和缺陷识别等方面归纳了该技术的国内外研究现状,最后针对现有研究中存在的不足,指出了相应的对策与建议。
    Abstract: Ultrasonic infrared imaging technology is a novel NDE technique, which performs well for material internal defect detection such as metal fatigue crack, composite material impact damage and adhesion and so on. This paper briefly depicted the basic principles and characteristics of ultrasonic IR thermal wave, then summarized research situation at home and abroad, and it finally pointed out deficiencies in the existing research and measures in future development.
  • [1] Henneke E G, Reifsnider K L, Stinchcomb W W. Thermography-an NDT method for damage detection[J]. Journal of Metals,1979,31(9):11-15.
    [2] 王迅,金万平,张存林,等.红外热波无损检测技术及其进展[J].无损检测,2004,26(10):497-501.
    [3] Favro L D, Han X, Ouyang Z, et al. Infrared imaging of defects heated by a sonic pulse[J]. Review of Scientific Instruments,2000,71(6):2418-2421.
    [4] 刘慧,刘俊岩,王扬.超声锁相热像技术检测接触界面类型缺陷[J].光学精密工程,2010,18(3): 653-661.
    [5] 张淑仪.超声红外热像技术及其在无损检测中的应用[J].应用声学,2004,12(5):1-6.
    [6] Shepard S M, Ahmed T, Lhota J R. Experimental considerationsin vibrothermography[C]. SPIE Thermosense XXVI, Orlando, FL. SPIE,2004,5405:332-335.
    [7] Renshaw J, Chen J C, Holland S D, et al. The sources of heat generation in vibrothermography[J]. NDT&E International,2011(44):736-739.
    [8] Han X, Zeng Z, Li W, et al. Acoustic chaos for enhanced detectability of cracks by sonic infrared imaging[J]. J Appl Phys,2004,95(7):3792-3797.
    [9] Thomas R L, Han X, Favro L D, et al. Infrared imaging of defects in materials with chaotic sonic excitation[C]. 2010 IEEE International Ultrasonics Symposium, San Diego, CA,2010:591-594.
    [10] Morbidini M, Cawley P, Barden T, et al. Prediction of the thermosonic signal from fatigue cracks in metals using vibration damping measurements[J]. J Appl Phys,2006,100(10):104905.
    [11] Perez I, Davis W R. Optimizing the thermosonics signal[J]. AIP Conf Proc,2003(657A):505-517.
    [12] Barden T J, Almond D P, Morbidini M, et al. Advances in thermosonics for detecting impact damage in CFRP composites[J]. Insight: NDT Testing and Condition Monitoring,2006,48(2):90-93.
    [13] Plau J M, Bendada A, Maldague X. Nondestructive inspection of open micro-cracks in thermally sprayed coatings using ultrasound excited vibrothermography[C]. Proc of SPIE,2007(6541):654112.
    [14] Castanedo C I, Genest M, Guibert S, et al. Comparative study of active thermography techniques for the nondestructive evaluation of honeycomb structures[J]. Research in NDE,2009,20(1):1-31.
    [15] 缪鹏程,洪毅,张仲宁,等.红外热像仪在超声红外热像技术中的应用[J].激光与红外,2003,33(2):132-134.
    [16] 陈大鹏,张存林,李晓丽,等.超声热红外技术在无损检测领域中的应用[J].激光与红外,2008,38(8):778-780.
    [17] Han X, Loggins V, Zeng Z, et al. Mechanical model for the generation of acoustic chaos in sonic infrared imaging[J]. Appl Phys Lett,2004,85(8):1332-1334.
    [18] Han X, Islam Md S, Newaz G, et al. Finite element modeling of the heating of cracks during sonic infrared imaging[J].Journal of Applied Physics,2006(99):074905.
    [19] Lu J, Han X, Newaz G, et al. Study of the effect of crack closure in sonic infrared imaging[J]. NDT&E,2007,22(2):127-135.
    [20] Morbidini M, Cawley P. The detectability of cracks using sonic IR[J]. Journal of Applied Physics,2009(105):093530.
    [21] 米小兵,张淑仪.超声波引起固体微裂纹局部发热的理论计算[J].自然科学进展,2004,14(6):628-634.
    [22] Zheng K, Zhang H, Zhang S, et al. A dynamical model of subharmonic generation in ultrasonic infrared thermography[J]. Ultrasonics,2006,44:e1343-e1347.
    [23] Chen Z, Zheng J, Zhang S, et al. Finite element modeling of heating phenomena of cracks excited by high-intensity ultrasonic pulses[J]. Chinese Physics B,2010,19(11):118104.
    [24] Holland S D, Renshaw J. Physics-based infrared image enhancement for thermography[J]. NDT&E International,2010,43(5):17-25.
    [25] 郑凯,张淑仪,蔡士杰.超声激发下缺陷红外信号的识别[J].无损检测,2008,30(10):757-759.
    [26] 冯辅周,张超省,袁建,等.超声红外热波技术中裂纹的识别和重构[J].无损检测,2011,33(11):17-20.
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出版历程
  • 收稿日期:  2012-04-07
  • 刊出日期:  2012-09-09

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