Logarithmic Frequency Modulated Thermal Wave Imaging for Subsurface Analysis

IF 0.9 4区 材料科学 Q4 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
Sk. Aashik, Sirisha. Ch, V. S. Ghali, S. Koteswararao, F. Wang, R. Mulaveesala
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引用次数: 0

Abstract

Capturing the spatio temporal radiation in the infrared portion of the spectrum from any object renders the temperature evolution of it and culminates in presenting the information about the hidden subsurface anomalies within the object. However deeper depth scanning and higher depth resolution with enhanced subsurface visualization are the significant challenges generally encountered in these studies that demands various stimulation and processing mechanism to explore these details. This manuscript introduces a novel log frequency modulation-based stimulation along with various post-processing approaches that caters to these requirements. This modality facilitates a band of low frequencies with increased energy in the stimulus for deeper depth scanning and spectral processing approaches to provide enhanced depth resolution in a single experimentation cycle. The hypothesis is validated through the experimentation carried out over a carbon fiber-reinforced plastic specimen with embedded flat bottom holes. A qualitative comparison between various signal processing approaches using thermographic metrics like the sizing of the defects and signal-to-noise ratio recommends the superiority of proposed stimulation and processing techniques for enhanced defect detection.

Abstract Image

用于地下分析的对数调频热波成像技术
捕捉来自任何物体的光谱红外部分的时空辐射,可呈现其温度演变情况,并最终呈现物体内部隐藏的地表下异常信息。然而,在这些研究中,深度扫描和更高的深度分辨率以及增强的地下可视化是普遍遇到的重大挑战,需要各种刺激和处理机制来探索这些细节。本手稿介绍了一种新颖的基于对数频率调制的刺激和各种后处理方法,以满足这些要求。这种模式有利于在刺激中增加能量的低频带,以进行更深的深度扫描,并采用光谱处理方法,在单个实验周期内提供更高的深度分辨率。在嵌入平底孔的碳纤维增强塑料试样上进行的实验验证了这一假设。利用缺陷大小和信噪比等热成像指标对各种信号处理方法进行的定性比较表明,所提出的激励和处理技术在增强缺陷检测方面具有优越性。
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来源期刊
Russian Journal of Nondestructive Testing
Russian Journal of Nondestructive Testing 工程技术-材料科学:表征与测试
CiteScore
1.60
自引率
44.40%
发文量
59
审稿时长
6-12 weeks
期刊介绍: Russian Journal of Nondestructive Testing, a translation of Defectoskopiya, is a publication of the Russian Academy of Sciences. This publication offers current Russian research on the theory and technology of nondestructive testing of materials and components. It describes laboratory and industrial investigations of devices and instrumentation and provides reviews of new equipment developed for series manufacture. Articles cover all physical methods of nondestructive testing, including magnetic and electrical; ultrasonic; X-ray and Y-ray; capillary; liquid (color luminescence), and radio (for materials of low conductivity).
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