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Enhanced transient eddy current detection of deep corrosion

机译:增强的深层腐蚀瞬态涡流检测

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Recent developments in the use of transient eddy current methods have demonstrated the advanced ability to detect and characterise corrosion and cracks within complex structures, using a single acquisition scan. In addition, the use of Hall sensors to measure the magnetic field directly enables measurements at greater depths in metals than is achieved using a conventional coil sensor. However, the rapid increase in effective field size with depth in the structure means that there is always a trade-off between defect sensitivity and susceptibility to the presence of nearby edges, fasteners and other sub-structure. The ability to characterise the defect in terms of metal loss, size and depth can also suffer when defect sensitivity is increased. This paper reports an investigation to determine how the sensitivity could be increased for metal-loss defects deeper than 15 mm (0.625") in the case when the proximity of structural changes is not an issue. The essential requirement is to increase the contrast between good and defective structure by either reducing noise levels or increasing the strength of the field reflected from the defect. An increase in the reflected field can be achieved by either increasing the incident field strength, or changing its spatial characteristics. Results have shown that defect sensitivity can be increased using these methods to enable a considerable improvement in detectability of metal loss deep in thick aluminium structure.
机译:使用瞬态涡流方法的最新进展表明,使用单次采集扫描就可以检测和表征复杂结构中的腐蚀和裂缝的先进功能。此外,与使用常规线圈传感器相比,使用霍尔传感器直接测量磁场可以在更大的金属深度进行测量。但是,有效场大小随结构深度的快速增加意味着缺陷敏感性和对附近边缘,扣件和其他子结构的存在的敏感性之间始终存在折衷。当提高缺陷敏感性时,以金属损失,尺寸和深度来表征缺陷的能力也会受到影响。本文报告了一项调查,目的是确定在结构变化的邻近性不是问题的情况下,对于厚度大于15毫米(0.625英寸)的金属损失缺陷,如何提高灵敏度。基本要求是提高良品之间的对比度。通过降低噪声水平或增加缺陷反射场的强度来改善缺陷结构;通过增加入射场强度或改变其空间特性,可以增加反射场。使用这些方法可以提高检测效率,从而大大改善了厚铝结构中深处金属损失的可检测性。

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