TY - JOUR
T1 - Design of Biplane Coils Based on Funnel Algorithm for Generating a Near-Zero Magnetic Environment in MSR
AU - Dou, Shuai
AU - Liu, Xikai
AU - Shangguan, Shengyi
AU - Wen, Tong
AU - Zheng, Shiqiang
AU - Han, Bangcheng
N1 - Publisher Copyright:
© 1963-2012 IEEE.
PY - 2023
Y1 - 2023
N2 - The biplane coils (BCs) based on the inverse design method are crucial for creating the near-zero magnetic environment in magnetic shielding room (MSR), but multiparameter optimization remains a key factor that limits the performance of the BCs. This study proposes a funnel algorithm (FA) to solve the issue of multiparameter optimization in the design. The upper and lower limits of the parameters are dynamically adjusted based on the previous calculating step. By gradually reducing the upper and lower limits, we achieve the BCs with optimal performance. This method has been verified by both the theoretical analysis and experimental test. Compared with other methods, the designed coils show a higher space utilization ratio (SUR) and smaller relative errors, with the SUR improved from 1.6% to 3.75% and the relative errors all less than 2%. Based on the designed BCs, the total residual magnetic field is stabilized below 40.4 pT at the central point of the MSR, with the noise reaching the intrinsic noise of the flux-gate magnetometer in the frequency range of interest. The proposed method can significantly improve the performance of the BCs, thus reducing the space and construct cost of the MSR and promoting the magnetoencephalogram (MEG) measurement based on the quantum technology.
AB - The biplane coils (BCs) based on the inverse design method are crucial for creating the near-zero magnetic environment in magnetic shielding room (MSR), but multiparameter optimization remains a key factor that limits the performance of the BCs. This study proposes a funnel algorithm (FA) to solve the issue of multiparameter optimization in the design. The upper and lower limits of the parameters are dynamically adjusted based on the previous calculating step. By gradually reducing the upper and lower limits, we achieve the BCs with optimal performance. This method has been verified by both the theoretical analysis and experimental test. Compared with other methods, the designed coils show a higher space utilization ratio (SUR) and smaller relative errors, with the SUR improved from 1.6% to 3.75% and the relative errors all less than 2%. Based on the designed BCs, the total residual magnetic field is stabilized below 40.4 pT at the central point of the MSR, with the noise reaching the intrinsic noise of the flux-gate magnetometer in the frequency range of interest. The proposed method can significantly improve the performance of the BCs, thus reducing the space and construct cost of the MSR and promoting the magnetoencephalogram (MEG) measurement based on the quantum technology.
KW - Biplane coil (BC) design
KW - funnel algorithm (FA)
KW - multiparameter optimization
KW - near-zero magnetic environment
KW - precision magnetic compensation
UR - https://www.scopus.com/pages/publications/85153400852
U2 - 10.1109/TIM.2023.3267370
DO - 10.1109/TIM.2023.3267370
M3 - 文章
AN - SCOPUS:85153400852
SN - 0018-9456
VL - 72
JO - IEEE Transactions on Instrumentation and Measurement
JF - IEEE Transactions on Instrumentation and Measurement
M1 - 6004211
ER -