Łukaszuk Ryszard, Chady Tomasz
Doctoral School, West Pomeranian University of Technology, 70-313 Szczecin, Poland.
Faculty of Electrical Engineering, West Pomeranian University of Technology, Sikorsky 37 St., 70-313 Szczecin, Poland.
Materials (Basel). 2023 Jan 4;16(2):506. doi: 10.3390/ma16020506.
This paper presents the results of experiments using the eddy current system designated for nondestructive inspection of carbon fiber-reinforced composites. For this purpose, the eddy current testing system with a differential transducer with two pairs of excitation coils oriented perpendicularly and a central pick-up coil was utilized. The transducer measures the magnetic flux difference flowing through the pick-up coil. The transducer of this design has already been successfully utilized to inspect isotropic metal structures. However, the anisotropy of the composites and their lower conductivity compared to metal components made the transducer parameters adjustment essential. Thus, various excitation frequencies were considered and investigated. The system was evaluated using a sample made of orthogonally woven carbon fiber-reinforced composites with two artificial flaws (the notches with a maximum relative depth of 30% and 70%, respectively, thickness of 0.4 mm, and a length of 5 mm). The main goal was to find a configuration suitable for detecting hidden flaws in such materials.
本文介绍了使用指定用于碳纤维增强复合材料无损检测的涡流系统进行实验的结果。为此,采用了一种涡流检测系统,该系统带有一个差动式传感器,该传感器有两对相互垂直定向的励磁线圈和一个位于中心的拾波线圈。该传感器测量流过拾波线圈的磁通量差。这种设计的传感器已成功用于检测各向同性金属结构。然而,复合材料的各向异性以及与金属部件相比其较低的电导率使得调整传感器参数至关重要。因此,考虑并研究了各种励磁频率。使用由正交编织碳纤维增强复合材料制成的样品对该系统进行评估,该样品有两个人造缺陷(分别为最大相对深度为30%和70%、厚度为0.4毫米、长度为5毫米的切口)。主要目标是找到一种适合检测此类材料中隐藏缺陷的配置。