TY - JOUR
T1 - Narrow-band anisotropic magnetized ferrite material simulation by approximate Crank–Nicolson procedure with improved nearly absorbing condition
AU - Wu, Peiyu
AU - Wang, Xin
AU - Xie, Yongjun
AU - Jiang, Haolin
AU - Natsuki, Toshiaki
N1 - Publisher Copyright:
© 2022 Informa UK Limited, trading as Taylor & Francis Group.
PY - 2022
Y1 - 2022
N2 - To simulate magnetized ferrite with unique anisotropic property, unconditionally stable implementation is proposed with improved absorbing condition. To be more particular, unconditionally stable scheme is based on the Crank-Nicolson (CN) procedure with approximatefactorization-splitting (AFS) scheme, higher-order nearly perfectly matched layer (NPML) formulation and complex envelope (CE) method. Simulation formulation of anisotropic ferrite material is modified according to both CN procedure and CE method. The accuracy, efficiency and absorption can be demonstrated through numerical examples. Compared with the theory resolution and simulation results, the proposed scheme can receive considerable performance with larger CFLNs from the aspects of decreased error and enhanced accuracy. By employing the higher-order formulation, absorption can be improved significantly especially in the low-frequency band. It can also maintain the unconditional stability when the time step surpasses the stability condition. Most importantly, it can solve time increment problem among the implicit algorithms with lower CFLNs in narrow-band simulation.
AB - To simulate magnetized ferrite with unique anisotropic property, unconditionally stable implementation is proposed with improved absorbing condition. To be more particular, unconditionally stable scheme is based on the Crank-Nicolson (CN) procedure with approximatefactorization-splitting (AFS) scheme, higher-order nearly perfectly matched layer (NPML) formulation and complex envelope (CE) method. Simulation formulation of anisotropic ferrite material is modified according to both CN procedure and CE method. The accuracy, efficiency and absorption can be demonstrated through numerical examples. Compared with the theory resolution and simulation results, the proposed scheme can receive considerable performance with larger CFLNs from the aspects of decreased error and enhanced accuracy. By employing the higher-order formulation, absorption can be improved significantly especially in the low-frequency band. It can also maintain the unconditional stability when the time step surpasses the stability condition. Most importantly, it can solve time increment problem among the implicit algorithms with lower CFLNs in narrow-band simulation.
KW - Anisotropic magnetized ferrite material
KW - complex envelope (CE)
KW - finite-difference time domain (FDTD)
KW - narrow-band simulation
KW - perfectly matched layer (PML)
UR - https://www.scopus.com/pages/publications/85126755845
U2 - 10.1080/09205071.2022.2043782
DO - 10.1080/09205071.2022.2043782
M3 - 文章
AN - SCOPUS:85126755845
SN - 0920-5071
VL - 36
SP - 1813
EP - 1837
JO - Journal of Electromagnetic Waves and Applications
JF - Journal of Electromagnetic Waves and Applications
IS - 13
ER -