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A Study on Influences of Metal Materials on Electromagnetic Field Generated by Pure DC and Combined DC

机译:金属材料对纯直流电磁场对电磁场的影响研究

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This paper presents the classification of metals materials by application of Hall Effect sensor based on the eddy current method with non-destructive testing. The electromagnetic field was generated by winding an SWG 22 wire onto the ferrite core to create a solenoid. Two measurement systems are used. One uses a Pure DC supply as the excitation voltage of the electromagnetic field of the Hall Effect sensor system; while the other uses a combination of AC and DC supply, which is amplified through an integrated Class-A amplifier circuit, as the excitation voltage. Three different metal samples, namely, steel, aluminum and stainless steel were used as specimen. Current test conducted to determine the suitable current level revealed that a 0.8 A current is safe to allow tests to be conducted. Results show that the Combined DC system is capable to classify conductive materials, where the Pure DC system lacks in this functionality. The Output voltage of Hall Effect sensor to test with steel, aluminum and stainless steel is 4.68 V, 1.74 V and 3.63 V, respectively. Furthermore, the use of the Combined DC system enables aluminum thickness to be distinguished. The tolerance of the system measuring the materials when using the Pure DC and Combined DC are ± 0.0697% and ± 0.5853% respectively.
机译:本文介绍了霍尔效应传感器基于涡流法的辐射电流法,介绍了金属材料的分类。通过将SWG 22线缠绕到铁氧体核心以产生电磁场以产生电磁场以产生螺线管。使用两个测量系统。一种使用纯直流电源作为霍尔效应传感器系统的电磁场的激励电压;而其他使用AC和DC电源,这是通过一个集成的A级放大电路放大,作为激励电压的组合。使用三种不同的金属样品,即钢,铝和不锈钢用作样品。进行电流测试以确定合适的电流水平,显示出0.8电流是安全的,以允许进行测试。结果表明,组合的DC系统能够对导电材料进行分类,其中纯直流系统缺乏该功能。霍尔效应传感器的输出电压分别用钢,铝和不锈钢进行试验,分别为4.68V,1.74 V和3.63V。此外,组合的DC系统的使用使得能够区分铝厚度。使用纯DC和组合DC时测量材料的耐受性分别为±0.0697%和±0.5853%。

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