热传导
热成像
材料科学
参数统计
激发
声学
工作(物理)
有限元法
热的
反演(地质)
半径
相(物质)
指数函数
相位差
钛合金
无损检测
机械
准确度和精密度
热导率
光学
热扩散率
反变换采样
热方程
估计理论
观测误差
扩散
有限差分法
参数化模型
测距
作者
B.M. Ma,Shupeng Sun,Lin Zhang
出处
期刊:Materials
[Multidisciplinary Digital Publishing Institute]
日期:2025-11-20
卷期号:18 (22): 5247-5247
摘要
Lock-in thermography is a widely used nondestructive testing technique for detecting subsurface defects in solid materials. In this study, one-dimensional analytical modeling and three-dimensional finite element simulations were combined to elucidate how lateral heat conduction influences quantitative depth estimation in titanium alloy material using two inversion strategies: the blind frequency method and the phase difference method. Parametric analyses were conducted for defect radius-to-depth ratios ranging from 0.5 to 8 under various excitation frequencies. Results show that the blind frequency method can significantly underestimate defect depth with errors of up to 20.7% when the radius-to-depth ratio is as small as 0.5. To mitigate this bias, an exponential correction model was developed to compensate for lateral conduction effects, reducing the error to within ±5%. The accuracy of the phase difference method is found to depend jointly on defect depth, excitation frequency, and the ratio of defect radius to thermal diffusion length; estimation errors become negligible when this ratio exceeds 3. The novelty of this work lies in identifying lateral conduction as a key bias source and establishing a quantitative correction framework for the depth inversion based on the blind frequency method. The proposed approach is expected to enhance the accuracy of quantitative thermography for engineering applications.
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