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Evaluation of Near-Field Electromagnetic Shielding Effectiveness at Low Frequencies

机译:低频近场电磁屏蔽效能评估

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Magnetic induction tomography (MIT) is a novel technology for flow measurement offering significant promise in the measurement of multiphase flows containing low-conductivity fluids such as saline water. Such measurements rely on optimal effective shielding to avoid external field interference and extraneous capacitive coupling that can lead to false readings and overestimations of the eddy current-induced fields. The performance of various attenuation materials in the low megahertz frequency spectrum is presented and compared with outcomes from a numerical computational method. The results demonstrate that the shielding mechanism that prevails at low frequencies is that of reflection. Consequently, hard shields such as metals show superior wave attenuation performance for MIT systems operating below 13 MHz. For higher frequencies, the absorption effect on the incident wave path within soft electromagnetic shields presents enhanced shielding properties. This paper also explores the limitations of traditional testing geometry for shielding effectiveness and proposes an alternative approach to near-field, free-space measurement for MIT sensors. The proposed semi-enclosed approach shows enhanced shielding effectiveness measurements compared with the traditional transversal barrier method. The proposed method was used to assess the electromagnetic shielding effectiveness of ferromagnetic and various metallic materials.
机译:磁感应断层扫描(MIT)是一种用于流量测量的新颖技术,在测量包含低电导率流体(例如盐水)的多相流时,具有重大前景。这样的测量依靠最佳的有效屏蔽来避免外部场干扰和外来的电容耦合,后者可能导致错误的读数和对涡电流感应场的过高估计。介绍了低兆赫兹频谱中各种衰减材料的性能,并将其与数值计算方法的结果进行了比较。结果表明,在低频下占主导地位的屏蔽机制是反射。因此,对于在13 MHz以下工作的MIT系统,诸如金属之类的硬屏蔽层显示出优异的波衰减性能。对于更高的频率,对软电磁屏蔽罩内的入射波路径的吸收效应会增强屏蔽性能。本文还探讨了传统测试几何形状对于屏蔽效果的局限性,并提出了一种用于MIT传感器的近场,自由空间测量的替代方法。与传统的横向屏障方法相比,所提出的半封闭方法显示出增强的屏蔽效能测量。该方法被用于评估铁磁和各种金属材料的电磁屏蔽效果。

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