TY - JOUR
T1 - Interference Mechanisms of Undesired Fields on Shielded Tangential Magnetic Field Probes during Measurement
AU - Hu, Kunkun
AU - Yan, Zhaowen
AU - Gao, Tengfei
AU - Han, Zeyu
AU - Ma, Siyuan
AU - Zhao, Fuyu
N1 - Publisher Copyright:
© 1963-2012 IEEE.
PY - 2026/5/1
Y1 - 2026/5/1
N2 - Shielded tangential magnetic field probes suffer from significant measurement errors due to concurrent coupling of tangential electric field (Ey-field) and vertical magnetic field (Hz -field) during near-field scanning. Existing research lacks a comprehensive analysis of this hybrid coupling mechanism and effective separation methodologies. This study presents the systematic investigation of the hybrid coupling mechanism of Ey-field and Hz-field in shielded tangential magnetic field probes. By establishing equivalent circuit models, the physical paths of capacitive coupling and magnetic flux penetration are clarified, explaining the frequency-dependent behavior of Ey-field coupling transitioning from 20 dB/dec at low frequencies to 40 dB/dec at higher frequencies, and the consistent 20-dB/dec increase of Hz-field coupling. The field separation method is used to achieve effective separation of Ey-field and Hz-field coupling responses in a wide frequency band of 0.01-40 GHz. The inherent crossover frequency (fk) of the probe is identified as a characteristic parameter, with physical interpretation of its role as a critical point determining the dominant coupling mechanism: Hz-field coupling dominates below fk, while Ey-field coupling dominates above it. The method is validated through full-wave simulations and measurements on shorted microstrip lines. This work provides a new approach for quantifying undesired field coupling in near-field measurement.
AB - Shielded tangential magnetic field probes suffer from significant measurement errors due to concurrent coupling of tangential electric field (Ey-field) and vertical magnetic field (Hz -field) during near-field scanning. Existing research lacks a comprehensive analysis of this hybrid coupling mechanism and effective separation methodologies. This study presents the systematic investigation of the hybrid coupling mechanism of Ey-field and Hz-field in shielded tangential magnetic field probes. By establishing equivalent circuit models, the physical paths of capacitive coupling and magnetic flux penetration are clarified, explaining the frequency-dependent behavior of Ey-field coupling transitioning from 20 dB/dec at low frequencies to 40 dB/dec at higher frequencies, and the consistent 20-dB/dec increase of Hz-field coupling. The field separation method is used to achieve effective separation of Ey-field and Hz-field coupling responses in a wide frequency band of 0.01-40 GHz. The inherent crossover frequency (fk) of the probe is identified as a characteristic parameter, with physical interpretation of its role as a critical point determining the dominant coupling mechanism: Hz-field coupling dominates below fk, while Ey-field coupling dominates above it. The method is validated through full-wave simulations and measurements on shorted microstrip lines. This work provides a new approach for quantifying undesired field coupling in near-field measurement.
KW - Electric field interference
KW - magnetic field interference
KW - magnetic field probe
KW - near-field scanning
UR - https://www.scopus.com/pages/publications/105029402897
U2 - 10.1109/TAP.2026.3659189
DO - 10.1109/TAP.2026.3659189
M3 - 文章
AN - SCOPUS:105029402897
SN - 0018-926X
VL - 74
SP - 4806
EP - 4818
JO - IEEE Transactions on Antennas and Propagation
JF - IEEE Transactions on Antennas and Propagation
IS - 5
ER -