Title :
A Cylindrical Higher-Order FDTD Algorithm With PML and Quasi-PML
Author :
Yiwang Chen ; Yawen Liu ; Bin Chen ; Pin Zhang
Author_Institution :
Nat. Key Lab. on Electromagn. Environ. Effects & Electro-Opt. Eng., PLA Univ. of Sci. & Tech., Nanjing, China
Abstract :
In this paper, we develop an higher-order finite-difference time-domain (HO-FDTD) scheme with a cylindrical grid for time-domain Maxwell´s equations. The stability and dispersion property of the scheme is investigated and it is shown that larger cells decrease the numerical phase error, which makes it significantly lower than the finite-difference time-domain (FDTD) for low and medium discretizations, and the HO-FDTD scheme has an advantage of multiresolution time-domain (MRTD) in general. Moreover, two absorbing boundary conditions (ABCs) are derived for the cylindrical HO-FDTD grids. The first one is the PML based on stretched coordinates, and the other is the straightforward extension of Berenger´s perfectly matched layer (PML) that is named quasi-PML (QPML) as it is no longer perfectly matched for cylindrical interfaces. The absorbing effectiveness of the two ABCs are compared and the numerical simulations validate that both PML schemes can provide a satisfactory absorbing boundary condition, while the QPML can save more computation time and computer memory.
Keywords :
Maxwell equations; electromagnetic wave absorption; finite difference time-domain analysis; Berenger PML; Berenger perfectly matched layer; HO-FDTD scheme; MRTD; QPML; absorbing boundary condition; absorbing boundary conditions; absorbing effectiveness; computation time; computer memory; cylindrical HO-FDTD grid; cylindrical grid; cylindrical higher-order FDTD algorithm; cylindrical interfaces; higher-order finite-difference time-domain scheme; multiresolution time-domain; numerical phase error; numerical simulation; quasiPML; time-domain Maxwell equation; Cylindrical coordinates; higher-order finite-difference time-domain (HO-FDTD); numerical dispersion; perfect matched layer (PML); stability;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2013.2267720