Sathish Shamachary, Welter John T, Jata Kumar V, Schehl Norman, Boehnlein Thomas
Structural Integrity Division, University of Dayton Research Institute, 300 College Park, Dayton, Ohio 45469-0127, USA.
Rev Sci Instrum. 2012 Sep;83(9):095103. doi: 10.1063/1.4749245.
This paper presents the development of a new non-contact acousto-thermal signature (NCATS) nondestructive evaluation technique. The physical basis of the method is the measurement of the efficiency of the material to convert acoustic energy into heat, and a theoretical model has been used to evaluate this. The increase in temperature due to conversion of acoustic energy injected into the material without direct contact was found to depend on the thermal and elastic properties of the material. In addition, it depends on the experimental parameters of the acoustic source power, the distance between sample and acoustic source, and the period of acoustic excitation. Systematic experimental approaches to optimize each of the experimental variables to maximize the observed temperature changes are described. The potential of the NCATS technique to detect microstructural-level changes in materials is demonstrated by evaluating accumulated damage due to plasticity in Ti-6Al-4V and low level thermal damage in polymer matrix composites. The ability of the technique for macroscopic applications in nondestructive evaluation is demonstrated by imaging a crack in an aluminum test sample.
本文介绍了一种新型非接触声热特征(NCATS)无损评估技术的发展。该方法的物理基础是测量材料将声能转化为热能的效率,并使用理论模型对此进行评估。发现由于在不直接接触的情况下向材料中注入声能而导致的温度升高取决于材料的热性能和弹性性能。此外,它还取决于声源功率、样品与声源之间的距离以及声激发周期等实验参数。描述了通过优化每个实验变量以最大化观察到的温度变化的系统实验方法。通过评估Ti-6Al-4V中由于塑性引起的累积损伤以及聚合物基复合材料中的低水平热损伤,证明了NCATS技术检测材料微观结构水平变化的潜力。通过对铝测试样品中的裂纹进行成像,证明了该技术在无损评估宏观应用中的能力。