Spreading and Shrinking Effects of Coplanar Capacitive Sensors for Surface Defects

IF 2.6 3区 材料科学 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
M. Mwelango, X. Yin, M. Zhao, R. Fan, Z. Han, G. Fan, P. Ma, X. Yuan, W. Li
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Abstract

With increasing attention to safety, accurate detection of defects in diverse materials is crucial. Non-Destructive Evaluation (NDE) techniques play a key role in this effort. However, many approaches overlook preliminary signal analysis, which is vital for understanding fundamental sensor signal characteristics and improving advanced techniques. This study aims to investigate the fundamental signal properties from coplanar capacitive sensors (CCS) with square electrodes to gain insights into the relationship between signal properties and actual linear defect size in both conducting and non-conducting materials. The first-order derivatives (1st O.DE) of raw signals obtained from CCS through both simulations and experiments were further analysed, focusing on a circular surface defect. Nine sensor configurations were tested to examine the spreading effect. Experiment and simulation results were in good agreement, showing that the Full Width at Zero (FWZ) of the raw signals of both materials is greater than the actual defect diameter (spreading effect) whereas the signals processed using the 1st O.DE exhibited peak-trough widths greater than the actual defect diameter in non-conducting materials (spreading effect) and less than the actual diameter in conducting materials (shrinking effect). These results underscore that the spreading and shrinking effects are intrinsic characteristics of the CCS, attributed to the behavior of the CCS’s electric field and sensitivity distribution field (SDF) when interacting with different materials. By incorporating these insights into novel and advanced methods—such as imaging algorithms, machine learning approaches, and data fusion techniques—future developments can be effectively guided to enhance the accuracy, reliability, and advancement of defect detection, imaging, and sizing in coplanar capacitive sensing for NDE.

表面缺陷共面电容式传感器的扩展和收缩效应
随着人们对安全性的日益关注,准确检测各种材料中的缺陷变得至关重要。非破坏性评估(NDE)技术在这项工作中起着关键作用。然而,许多方法忽略了初步信号分析,这对于理解传感器信号的基本特性和改进先进技术至关重要。本研究旨在研究方形电极共面电容传感器(CCS)的基本信号特性,以深入了解导电和非导电材料中信号特性与实际线性缺陷尺寸之间的关系。通过模拟和实验进一步分析了CCS获得的原始信号的一阶导数(一阶O.DE),重点是圆形表面缺陷。对9种传感器配置进行了测试,以检验扩散效果。实验与仿真结果吻合较好,两种材料的原始信号的零处全宽(FWZ)均大于实际缺陷直径(扩展效应),而使用第一个ode处理的信号的峰谷宽度大于非导电材料的实际缺陷直径(扩展效应),小于导电材料的实际直径(收缩效应)。这些结果强调了扩散和收缩效应是CCS的内在特征,归因于CCS在与不同材料相互作用时的电场和灵敏度分布场(SDF)的行为。通过将这些见解纳入新颖和先进的方法-例如成像算法,机器学习方法和数据融合技术-可以有效地指导未来的发展,以提高无损检测共面电容传感的缺陷检测,成像和尺寸的准确性,可靠性和先进性。
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来源期刊
Journal of Nondestructive Evaluation
Journal of Nondestructive Evaluation 工程技术-材料科学:表征与测试
CiteScore
4.90
自引率
7.10%
发文量
67
审稿时长
9 months
期刊介绍: Journal of Nondestructive Evaluation provides a forum for the broad range of scientific and engineering activities involved in developing a quantitative nondestructive evaluation (NDE) capability. This interdisciplinary journal publishes papers on the development of new equipment, analyses, and approaches to nondestructive measurements.
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