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首页> 外文期刊>Sensor Letters: A Journal Dedicated to all Aspects of Sensors in Science, Engineering, and Medicine >Dynamic Compensation of Electrical Runout in Eddy Current Contactless Measurements of Non-Stationary Ferromagnetic Target
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Dynamic Compensation of Electrical Runout in Eddy Current Contactless Measurements of Non-Stationary Ferromagnetic Target

机译:非平稳铁磁靶涡流非接触测量中电跳动的动态补偿

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摘要

Industrial measuring systems nowadays are frequently based on eddy current sensors. These sensors are highly accurate, with high resolution, have good bandwidth and they are very robust against contamination in an industrial working environment. A major drawback of this technology is sensitivity of eddy current sensors to electromagnetic anisotropy of target material. This problem becomes critical in non stationary target applications, where measuring location is moving in the plane orthogonal to the sensor main axis. Compensation of induced error by lookup table is impractical due to non-stationarity of electromagnetic properties of target material. The other possibility is to smooth electromagnetic anisotropy by mechanical alteration of target surface. Unfortunately, this approach is very delicate and frequently leads to deterioration of initial situation. In this paper a new approach is presented. It is based on multiresolution signal decomposition using discrete wavelet transform, recognition of the component which is generated by electromagnetic anisotropy, and removing this component from eddy current sensor readings. This approach is dynamical in its essence and therefore it is capable of handling the non-stationary properties of electromagnetic anisotropy. The proposed method is experimentally verified. Achieved results show its applicability in real industrial conditions.
机译:如今的工业测量系统通常基于涡流传感器。这些传感器具有高精度,高分辨率和良好的带宽,并且在工业工作环境中具有极强的抗污染能力。该技术的主要缺点是涡流传感器对目标材料的电磁各向异性具有敏感性。在测量位置在与传感器主轴正交的平面中移动的非固定目标应用中,此问题变得至关重要。由于目标材料电磁特性的不平稳性,通过查找表补偿感应误差是不切实际的。另一种可能性是通过靶表面的机械改变来平滑电磁各向异性。不幸的是,这种方法非常微妙,并经常导致初始情况的恶化。本文提出了一种新方法。它基于使用离散小波变换的多分辨率信号分解,识别由电磁各向异性产生的分量以及从涡流传感器读数中删除该分量。这种方法本质上是动态的,因此能够处理电磁各向异性的非平稳特性。该方法已通过实验验证。取得的结果表明其在实际工业条件下的适用性。

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