TY - JOUR
T1 - Two-Step Nonlinear Calibration of LTS SQUID-based Full Tensor Magnetic Gradient System
AU - Liu, Tingli
AU - Qiu, Longqing
AU - Song, Zhengwei
AU - Luo, Jiawei
AU - Gong, Xingcheng
AU - Cheng, Yuhong
AU - Zhang, Guofeng
AU - Rong, Liangliang
N1 - Publisher Copyright:
© 2002-2011 IEEE.
PY - 2026
Y1 - 2026
N2 - The full tensor magnetic gradient (FTMG) system based on low-temperature superconducting quantum interference device (SQUID) planar gradiometers is susceptible to measurement errors, including imbalance errors, angular misalignment, scale factor deviations, and offset errors. To mitigate these effects, a two-step calibration method is proposed. In the first step, a three-dimensional Helmholtz coil generates a known magnetic field to correct imbalance and offset errors. In the second step, the FTMGmodule is rotated within a Maxwell coil to obtain outputs from all gradiometers. By minimizing the objective function between modeled and measured responses, the estimated error parameters can be obtained using the Trust-Region Reflective algorithm. Simulation results show that the mean absolute percentage error (MAPE) between the estimated and true parameters remains below 10%. Experimental validation further confirms the reliability of the method, as the residual magnetic gradient components for the six calibrated gradiometers are reduced from 688.16, 1017.32, 341.18, 532.45, 874.24, and 268.07 nT/m to 0.52, 0.30, 0.57, 0.35, 0.39, and 0.36 nT/m, respectively. These results demonstrate that the proposed approach significantly enhances the accuracy and stability of FTMG measurements.
AB - The full tensor magnetic gradient (FTMG) system based on low-temperature superconducting quantum interference device (SQUID) planar gradiometers is susceptible to measurement errors, including imbalance errors, angular misalignment, scale factor deviations, and offset errors. To mitigate these effects, a two-step calibration method is proposed. In the first step, a three-dimensional Helmholtz coil generates a known magnetic field to correct imbalance and offset errors. In the second step, the FTMGmodule is rotated within a Maxwell coil to obtain outputs from all gradiometers. By minimizing the objective function between modeled and measured responses, the estimated error parameters can be obtained using the Trust-Region Reflective algorithm. Simulation results show that the mean absolute percentage error (MAPE) between the estimated and true parameters remains below 10%. Experimental validation further confirms the reliability of the method, as the residual magnetic gradient components for the six calibrated gradiometers are reduced from 688.16, 1017.32, 341.18, 532.45, 874.24, and 268.07 nT/m to 0.52, 0.30, 0.57, 0.35, 0.39, and 0.36 nT/m, respectively. These results demonstrate that the proposed approach significantly enhances the accuracy and stability of FTMG measurements.
KW - Module calibration
KW - full tensor magnetic gradient (FTMG) measurement
KW - iterative optimization
KW - superconducting quantum interference devices (SQUIDs)
KW - trust-region reflective (TRF) algorithm
UR - https://www.scopus.com/pages/publications/105035680616
U2 - 10.1109/TASC.2026.3679855
DO - 10.1109/TASC.2026.3679855
M3 - 文章
AN - SCOPUS:105035680616
SN - 1051-8223
JO - IEEE Transactions on Applied Superconductivity
JF - IEEE Transactions on Applied Superconductivity
ER -