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Lift-off effect in high-frequency eddy current conductivity spectroscopy

机译:高频涡流电导谱中的剥离效应

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Precision eddy current measurements have been shown to be capable of characterizing the near-surface residual stress and cold work profiles in surface-treated components. To capture the peak compressive residual stress in moderately shot-peened (Almen 4-8 A) nickel-base superalloys, the eddy current inspection frequency has to be as high as 50-80 MHz. Unfortunately, spurious self- and stray-capacitance effects render the complex eddy current coil impedance variation with lift-off, the so-called lift-off curve, highly nonlinear, which makes it difficult to achieve accurate eddy current conductivity measurements beyond 25 MHz in the presence of even the slightest lift-off uncertainties. As opposed to the well-known inductive lift-off effect that decreases with increasing probe size, the capacitive liftoff effect increases with probe size. Both effects increase with frequency with the inductive effect being initially stronger, but then taken over at high frequencies by the faster growing capacitive effect. Since the two effects produce opposite curvature in the lift-off curve, in the frequency range where they are approximately equal to the lift-off curve becomes essentially linear and fairly accurate, conductivity measurements can be conducted even in the presence of lift-off variations.
机译:精确的涡流测量已经显示出能够表征表面处理过的部件中的近表面残余应力和冷加工曲线的特征。为了捕获中等强度喷丸处理(Almen 4-8 A)镍基高温合金的峰值压缩残余应力,涡流检查频率必须高达50-80 MHz。不幸的是,虚假的自电容和杂散电容效应会导致复杂的涡流线圈阻抗随提离而变化,所谓提离曲线是高度非线性的,这使得在25 MHz的频率范围内很难实现准确的涡流电导率测量甚至有最小的起飞不确定性的存在。与众所周知的感应剥离效应随探针尺寸的增加而减小相反,电容剥离效应随探针尺寸的增加而增加。两种效应都随频率而增加,最初的电感效应更强,但随后在高频处被更快增长的电容效应所取代。由于这两种效应会在提离曲线中产生相反的曲率,因此在它们近似等于提离曲线的频率范围内基本上变为线性且相当准确,即使出现提离变化,也可以进行电导率测量。

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