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Dive into the research topics where Jiangfan Liu is active.

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Featured researches published by Jiangfan Liu.


IEEE Transactions on Antennas and Propagation | 2012

Combined IE-FDTD Algorithm for Long-Range Loran-C Ground-Wave Propagation

Xiaoli Xi; Lili Zhou; Jin-Sheng Zhang; Jiangfan Liu; Lili Wang

The integral equation (IE) method and finite-difference time-domain (FDTD) method are combined for the prediction of long-range Loran-C ground-wave propagation. Being capable of modeling the topography details, the combined IE-FDTD algorithm has much better accuracy than the integral equation method. On the other hand, it saves computational resources dramatically as compared to a full FDTD solution. Measurement results along two paths between Xuancheng and Songshan China are used to validate the proposed algorithm.


IEEE Microwave and Wireless Components Letters | 2012

An Effective CFS-PML Implementation for Cylindrical Coordinate FDTD Method

Jiangfan Liu; Guobin Wan; Jin-Sheng Zhang; Xiao-Li Xi

The stretched coordinate (SC) perfectly matched layer (PML) absorbing boundary in cylindrical coordinate system is implemented using the bilinear transform technique. The proposed PML performs much better in attenuating low frequency evanescent waves as compared to the conventional UPML (anisotropic medium). Numerical results show the efficiency of the proposed algorithm.


IEEE Microwave and Wireless Components Letters | 2011

Combined Piecewise Linear Recursive Convolution-Bilinear Transform Implementation of the CFS-PML for Unmagnetized Plasma

Xiao-Li Xi; Rong Luo; Jiangfan Liu; Jin-Sheng Zhang; Yang Liu

The complex frequency shifted (CFS) perfectly matched layer (PML) has been proven to be more efficient in attenuating evanescent waves and reducing late-time reflections than the original PML. In this letter, the piecewise linear recursive convolution (PLRC) method is combined with the bilinear transform (BT) to implement the CFS-PML for unmagnetized plasma simulation. Compared to the original bilinear transform implementation, the computational cost of the PLRC CFS-PML is greatly reduced with the same absorbing performance.


IEEE Transactions on Antennas and Propagation | 2015

FDTD Simulation for Wave Propagation in Anisotropic Dispersive Material Based on Bilinear Transform

Xiaoli Xi; Zheng-Wei Li; Jiangfan Liu; Jin-Sheng Zhang

The finite-different time-domain (FDTD) method is applied to solve wave propagation in anisotropic dispersive materials by means of bilinear transform (BT) technique. The frequency-dependent and anisotropic constitutive relation is translated into time-domain update equations with coupled x- and y-components of electric fields. The proposed algorithm has a simple formulation and is easy to apply to general dispersive anisotropic or isotropic material. The transmission and reflection coefficients of a 9-mm magnetized plasma slab are calculated and compared to analytical solutions for validation purpose. Very-good agreements are found in both amplitude and phase of these coefficients.


IEEE Transactions on Plasma Science | 2016

An Unconditionally Stable WLP-FDTD Model of Wave Propagation in Magnetized Plasma

Jin-Sheng Zhang; Xiao-Li Xi; Zheng-Wei Li; Jiangfan Liu; Yurong Pu

The weighted Laguerre polynomials-based finite-difference time-domain algorithm is applied for modeling wave propagation in a magnetized plasma medium. Its anisotropic property is treated by solving a set of tightly coupled current densities components implicitly at each iteration step. The equations are formulated in a stretched-coordinate system for the implementation of perfectly matched layer. Numerical examples validate the accuracy and efficiency of the developed algorithm.


international symposium on antennas, propagation and em theory | 2008

A solution to the propagation of electromagnetic wave in plasma sheath using FDTD method

Jiangfan Liu; Xiao-Li Xi; Yang Liu

An auxiliary differential equation finite-difference time domain (ADE-FDTD) methodology was used here to study the propagation of electromagnetic wave through a plasma sheath The reflection and transmission coefficients calculated by ADE-FDTD were compared with the analytic ones. The result shows an excellent agreement. Then, ADE-FDTD was used to resolve wave propagation in plasma sheath of RAMC flight, and the FDTD results agree with the date measured by RAMC flight.


IEEE Microwave and Wireless Components Letters | 2016

Tridiagonalized WLP-FDTD Implementation for Wave Propagation in Magnetized Plasma

Jin-Sheng Zhang; Xiao-Li Xi; Zheng-Wei Li; Jiangfan Liu

We present an efficient implementation of the unconditionally stable finite-difference time-domain (FDTD) algorithm based on the weighted Laguerre polynomials (WLPs) for the modeling of wave propagation in magnetized plasmas. The sparse matrix equation is tri-diagonalized by using a factorization-splitting (FS) scheme, leading to a significant reduction in computational time. The algorithm is validated by numerical experiments.


IEEE Microwave and Wireless Components Letters | 2014

An Effective CFS-PML Implementation for the Cylindrical ADI-FDTD Method

Jiangfan Liu; Yurong Pu; Jin-Sheng Zhang; Xiao-Li Xi

A perfectly matched layer (PML) with complex-frequency-shifted (CFS) constitutive parameters is introduced to the alternating-direction-implicit finite-difference time-domain (ADI-FDTD) method in cylindrical grids. The new CFS-PML is based on complex stretching methodology and implemented using bilinear transform. Numerical results show the effectiveness of the proposed implementation.


IEEE Transactions on Plasma Science | 2017

An Iterative WLP-FDTD Method for Wave Propagation in Magnetized Plasma

Yun Fang; Xiao-Li Xi; Jiangfan Liu; Yurong Pu; Jin-Sheng Zhang

We previously developed a tri-diagonalized finite-difference time-domain (FDTD) algorithm based on the weighted Laguerre polynomials (WLPs) for modeling wave propagation in magnetized plasma. The algorithm demonstrated dramatic CPU time reduction in comparison with the original WLP-FDTD algorithm. However, a splitting error was caused owing to the additional perturbation term. In this paper, an iterative scheme is introduced to the tri-diagonalized WLP-FDTD algorithm to further reduce the splitting error. Numerical example shows the accuracy and effectiveness of the proposed algorithm.


IEEE Microwave and Wireless Components Letters | 2017

Modeling of Wave Propagation in Isotropic Cold Plasma Using Iterative WLP-FDTD Algorithm

Yun Fang; Xiao-Li Xi; Jia-Huan Zheng; Jiangfan Liu; Yurong Pu; Jin-Sheng Zhang

In this letter, an efficient implementation of the iterative unconditionally stable finite-difference time domain (FDTD) based on weighted Laguerre polynomials (WLPs) algorithm is presented for isotropic cold plasma. The iterative scheme is employed to reduce the splitting error in WLP-FDTD with factorization-splitting procedure. Meanwhile, a stretched-coordinate perfectly matched layer with a complex-frequency-shifted factor is used as the absorbing boundary condition. Numerical example demonstrates the accuracy and efficiency of the proposed algorithm.

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Lili Zhou

Shaanxi University of Science and Technology

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Guobin Wan

Northwestern University

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Lili Wang

Northwestern University

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Jie Wang

Naval University of Engineering

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