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首页> 外文期刊>Antennas and Propagation, IEEE Transactions on >Development of a Novel FDTD (2, 4)-Compatible Conformal Scheme for Electromagnetic Computations of Complex Curved PEC Objects
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Development of a Novel FDTD (2, 4)-Compatible Conformal Scheme for Electromagnetic Computations of Complex Curved PEC Objects

机译:复杂弯曲PEC对象电磁计算的新型FDTD(2,4)兼容保形方案的开发

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摘要

We present a modified fourth-order finite-difference time-domain [FDTD (2, 4)] conformal scheme for accurately computing electromagnetic characteristics of some complex three-dimensional (3D) perfectly conducting (PEC) objects. It has higher accuracy and efficiency than those of conventional FDTD and FDTD (2, 4) methods, as coarse meshes are employed with staircase errors reduced effectively during its implementation. Two integration loops of the Faraday's law are used for updating magnetic field components, while the updating equations of electric field ones are the same as those in the normal FDTD method. A rigorous analysis of its global stability, based on the conventional high-order FDTD stability criterion and the Fourier method, is also performed. In order to obtain stable and accurate numerical results, a user-defined geometric precision technique, which gives a criterion for determining the time step, is employed for our computations. It is numerically demonstrated that using our proposed FDTD (2, 4)-compatible conformal scheme, high accuracy and low dispersion errors can be achieved for fast predicting radar cross sections as well as induced current distribution of some complex 3-D structures.
机译:我们提出了一种改进的四阶有限差分时域[FDTD(2,4)]保形方案,用于精确计算某些复杂的三维(3D)完美导电(PEC)对象的电磁特性。与传统的FDTD和FDTD(2,4)方法相比,它具有更高的准确性和效率,因为采用了粗网格,并在实施过程中有效减少了阶梯误差。法拉第定律的两个积分环用于更新磁场分量,而电场的更新方程与常规FDTD方法相同。还基于常规的高阶FDTD稳定性准则和傅里叶方法,对其全局稳定性进行了严格的分析。为了获得稳定和准确的数值结果,我们使用了用户定义的几何精度技术,该技术给出了确定时间步长的标准。数值证明,使用我们提出的与FDTD(2,4)兼容的保形方案,可以快速准确地预测雷达横截面以及某些复杂3-D结构的感应电流分布,从而实现高精度和低色散误差。

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