TY - JOUR
T1 - Design of Uniform-Field Coils With Adjustable Coil Constant for Calibration of Triaxial Magnetometers Across Different Magnetic Field Ranges
AU - Qi, Lei
AU - Han, Bangcheng
AU - Zhou, Weiyong
AU - Chen, Daiyong
AU - Feng, Rui
N1 - Publisher Copyright:
© 2026 IEEE.
PY - 2026
Y1 - 2026
N2 - The calibration of a triaxial magnetometer (TAM) relies on a high-precision reference magnetic source that provides a known magnetic field, and its accuracy directly determines the final calibration precision. To address the challenge of calibrating TAMs across widely varying measurement ranges found in diverse applications, this article proposes a coil design method featuring an adjustable coil constant (ACC). By integrating the target field method (TFM) and the nondominated sorting genetic algorithm II with adaptive penalties (AP-NSGA-II), the coil structure is optimized to generate controllable magnetic fields spanning multiple orders of magnitude. This design enables the generation of a highly uniform magnetic field over a large central volume without relying on current sources with multiple output ranges. Experimental results demonstrate that the maximum magnetic field nonuniformity is 0.433% across different ACC settings, aligning well with design expectations. Furthermore, by combining the proposed system with the differential evolution (DE) algorithm, TAM calibration was performed at magnetic field intensities of 30000 and 100 nT, achieving postcalibration residuals of 2.32 and 1.97 nT, respectively. Experiments verify that the coils designed with this method can provide high-precision, uniform reference magnetic fields for calibrating different types of TAMs across wide measurement ranges.
AB - The calibration of a triaxial magnetometer (TAM) relies on a high-precision reference magnetic source that provides a known magnetic field, and its accuracy directly determines the final calibration precision. To address the challenge of calibrating TAMs across widely varying measurement ranges found in diverse applications, this article proposes a coil design method featuring an adjustable coil constant (ACC). By integrating the target field method (TFM) and the nondominated sorting genetic algorithm II with adaptive penalties (AP-NSGA-II), the coil structure is optimized to generate controllable magnetic fields spanning multiple orders of magnitude. This design enables the generation of a highly uniform magnetic field over a large central volume without relying on current sources with multiple output ranges. Experimental results demonstrate that the maximum magnetic field nonuniformity is 0.433% across different ACC settings, aligning well with design expectations. Furthermore, by combining the proposed system with the differential evolution (DE) algorithm, TAM calibration was performed at magnetic field intensities of 30000 and 100 nT, achieving postcalibration residuals of 2.32 and 1.97 nT, respectively. Experiments verify that the coils designed with this method can provide high-precision, uniform reference magnetic fields for calibrating different types of TAMs across wide measurement ranges.
KW - Adjustable coil constant (ACC)
KW - coil design
KW - magnetometer calibration
KW - uniform magnetic field
UR - https://www.scopus.com/pages/publications/105036106470
U2 - 10.1109/TIM.2026.3684648
DO - 10.1109/TIM.2026.3684648
M3 - 文章
AN - SCOPUS:105036106470
SN - 0018-9456
VL - 75
JO - IEEE Transactions on Instrumentation and Measurement
JF - IEEE Transactions on Instrumentation and Measurement
M1 - 9519111
ER -