Abstract—Time modulated linear antenna arrays consisting of printed dipoles above a ground plane are simulated using the finite-difference time-domain (FDTD) method. The FDTD method brings great convenience to the investigation of the time domain responses of the time modulated arrays. In conjunction with the near-to-far field transformation in time domain, the far-field transient response can be computed to explain the physical essence of different time sequences. By employing the discrete Fourier Transform (DFT) and the frequency domain near-to-far field transformation, the radiation patterns at the frequencies of interest are obtained and are compared with the measured results. Simulation results show that the FDTD method is an effective...
A new discrete Green’s function formulation of the finite difference time domain (DGF-FDTD) method h...
Many electrical engineering problems can be easily formulated and expressed using Maxwell’s equation...
This work pertains to the study of passive electronic devices with fine features, e.g., electronic p...
<正> The problem for calculating near fields of EM radiation systems by using the finitediffere...
The Finite-Difference Time-Domain (FDTD) method has gained tremendous popularity in the past decade ...
The Finite-Difference Time-Domain (FDTD) method has gained tremendous popularity in the past decade ...
The knowledge of the behavior of pager antennas and the magnetic field within 2 cm of lossy dielectr...
The knowledge of the behavior of pager antennas and the magnetic field within 2 cm of lossy dielectr...
The knowledge of the behavior of pager antennas and the magnetic field within 2 cm of lossy dielectr...
The FDTD (finite difference time domain) method is used to numerically simulate the transient radiat...
In this paper transient fields for antennas with more general geometries are calculated directly usi...
An alternative method is proposed to characterize the radiation pattern of antennas from an impulse ...
We use finite-difference time-domain (FDTD) numerical simulations to study horizontal dipole radiati...
The three dimensional finite difference time domain (FDTD) algorithm is used to analyze broadband f...
The three dimensional finite difference time domain (FDTD) algorithm is used to analyze broadband f...
A new discrete Green’s function formulation of the finite difference time domain (DGF-FDTD) method h...
Many electrical engineering problems can be easily formulated and expressed using Maxwell’s equation...
This work pertains to the study of passive electronic devices with fine features, e.g., electronic p...
<正> The problem for calculating near fields of EM radiation systems by using the finitediffere...
The Finite-Difference Time-Domain (FDTD) method has gained tremendous popularity in the past decade ...
The Finite-Difference Time-Domain (FDTD) method has gained tremendous popularity in the past decade ...
The knowledge of the behavior of pager antennas and the magnetic field within 2 cm of lossy dielectr...
The knowledge of the behavior of pager antennas and the magnetic field within 2 cm of lossy dielectr...
The knowledge of the behavior of pager antennas and the magnetic field within 2 cm of lossy dielectr...
The FDTD (finite difference time domain) method is used to numerically simulate the transient radiat...
In this paper transient fields for antennas with more general geometries are calculated directly usi...
An alternative method is proposed to characterize the radiation pattern of antennas from an impulse ...
We use finite-difference time-domain (FDTD) numerical simulations to study horizontal dipole radiati...
The three dimensional finite difference time domain (FDTD) algorithm is used to analyze broadband f...
The three dimensional finite difference time domain (FDTD) algorithm is used to analyze broadband f...
A new discrete Green’s function formulation of the finite difference time domain (DGF-FDTD) method h...
Many electrical engineering problems can be easily formulated and expressed using Maxwell’s equation...
This work pertains to the study of passive electronic devices with fine features, e.g., electronic p...