Magnetic Field Testing Technique of System-Generated Electromagnetic Pulse Based on Magnetoresistance Effects

To address the technical challenges of system-generated electromagnetic pulse (SGEMP) measurement, the generation environment of SGEMP is introduced, and the characteristics of the magnetic field waveform to be measured are analyzed first in this paper. Then a magnetoresistance-based SGEMP measureme...

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Main Authors: Yifei Liu, Wei Wu, Jinxi Li, Mo Zhao, Feng Wei, Shuqing Ren, Tao Huang
Format: Article
Language:English
Published: MDPI AG 2023-01-01
Series:Electronics
Subjects:
Online Access:https://www.mdpi.com/2079-9292/12/3/492
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author Yifei Liu
Wei Wu
Jinxi Li
Mo Zhao
Feng Wei
Shuqing Ren
Tao Huang
author_facet Yifei Liu
Wei Wu
Jinxi Li
Mo Zhao
Feng Wei
Shuqing Ren
Tao Huang
author_sort Yifei Liu
collection DOAJ
description To address the technical challenges of system-generated electromagnetic pulse (SGEMP) measurement, the generation environment of SGEMP is introduced, and the characteristics of the magnetic field waveform to be measured are analyzed first in this paper. Then a magnetoresistance-based SGEMP measurement method is proposed for the first time. Aiming at the problem that the high frequency response of the existing commercial magnetoresistance chips cannot meet the test requirements, a pulsed magnetic field detector with strong anti-interference ability is developed in this work based on the tunneling magnetoresistance (TMR) sensor chip developed by Lanzhou University and a high-gain amplifier circuit with common mode rejection and a good shielding structure. It can be shown from the calibration results that the detector sensitivity factor is 4.0 nT/mV and the measurable pulse front is greater than or equal to 28 ns, which meet the requirements of SGEMP magnetic field waveform measurement. Based on the developed detector, the ideal test waveform is obtained under the “Flash II” hard <i>X</i>-ray pulse source through a reasonable experimental design. The related work has laid a foundation for validating the numerical calculation model and further mastering the propagation law and effect mechanism of SGEMP.
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spelling doaj.art-2b9eb6c2680c473da33f690bbc5c9f442023-11-16T16:27:15ZengMDPI AGElectronics2079-92922023-01-0112349210.3390/electronics12030492Magnetic Field Testing Technique of System-Generated Electromagnetic Pulse Based on Magnetoresistance EffectsYifei Liu0Wei Wu1Jinxi Li2Mo Zhao3Feng Wei4Shuqing Ren5Tao Huang6State Key Laboratory of Intense Pulsed Radiation Simulation and Effect, Northwest Institute of Nuclear Technology, Xi’an 710024, ChinaState Key Laboratory of Intense Pulsed Radiation Simulation and Effect, Northwest Institute of Nuclear Technology, Xi’an 710024, ChinaState Key Laboratory of Intense Pulsed Radiation Simulation and Effect, Northwest Institute of Nuclear Technology, Xi’an 710024, ChinaState Key Laboratory of Intense Pulsed Radiation Simulation and Effect, Northwest Institute of Nuclear Technology, Xi’an 710024, ChinaNational Key Laboratory of Antennas and Microwave Technology, Xidian University, Xi’an 710071, ChinaState Key Laboratory of Intense Pulsed Radiation Simulation and Effect, Northwest Institute of Nuclear Technology, Xi’an 710024, ChinaState Key Laboratory of Intense Pulsed Radiation Simulation and Effect, Northwest Institute of Nuclear Technology, Xi’an 710024, ChinaTo address the technical challenges of system-generated electromagnetic pulse (SGEMP) measurement, the generation environment of SGEMP is introduced, and the characteristics of the magnetic field waveform to be measured are analyzed first in this paper. Then a magnetoresistance-based SGEMP measurement method is proposed for the first time. Aiming at the problem that the high frequency response of the existing commercial magnetoresistance chips cannot meet the test requirements, a pulsed magnetic field detector with strong anti-interference ability is developed in this work based on the tunneling magnetoresistance (TMR) sensor chip developed by Lanzhou University and a high-gain amplifier circuit with common mode rejection and a good shielding structure. It can be shown from the calibration results that the detector sensitivity factor is 4.0 nT/mV and the measurable pulse front is greater than or equal to 28 ns, which meet the requirements of SGEMP magnetic field waveform measurement. Based on the developed detector, the ideal test waveform is obtained under the “Flash II” hard <i>X</i>-ray pulse source through a reasonable experimental design. The related work has laid a foundation for validating the numerical calculation model and further mastering the propagation law and effect mechanism of SGEMP.https://www.mdpi.com/2079-9292/12/3/492differential amplifierpulsed electromagnetic fieldssystem-generated electromagnetic pulse (SGEMP)TEM (Transverse Electromagnetic) chambertunneling magnetoresistance effect
spellingShingle Yifei Liu
Wei Wu
Jinxi Li
Mo Zhao
Feng Wei
Shuqing Ren
Tao Huang
Magnetic Field Testing Technique of System-Generated Electromagnetic Pulse Based on Magnetoresistance Effects
Electronics
differential amplifier
pulsed electromagnetic fields
system-generated electromagnetic pulse (SGEMP)
TEM (Transverse Electromagnetic) chamber
tunneling magnetoresistance effect
title Magnetic Field Testing Technique of System-Generated Electromagnetic Pulse Based on Magnetoresistance Effects
title_full Magnetic Field Testing Technique of System-Generated Electromagnetic Pulse Based on Magnetoresistance Effects
title_fullStr Magnetic Field Testing Technique of System-Generated Electromagnetic Pulse Based on Magnetoresistance Effects
title_full_unstemmed Magnetic Field Testing Technique of System-Generated Electromagnetic Pulse Based on Magnetoresistance Effects
title_short Magnetic Field Testing Technique of System-Generated Electromagnetic Pulse Based on Magnetoresistance Effects
title_sort magnetic field testing technique of system generated electromagnetic pulse based on magnetoresistance effects
topic differential amplifier
pulsed electromagnetic fields
system-generated electromagnetic pulse (SGEMP)
TEM (Transverse Electromagnetic) chamber
tunneling magnetoresistance effect
url https://www.mdpi.com/2079-9292/12/3/492
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