首页> 外文会议>2014 International Conference on Electromagnetics in Advanced Applications >A hybrid convolution quadrature-temporal Galerkin approach to the solution of multiregion, dispersive time domain electromagnetic integral equations of electromagnetics
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A hybrid convolution quadrature-temporal Galerkin approach to the solution of multiregion, dispersive time domain electromagnetic integral equations of electromagnetics

机译:混合卷积正交时态Galerkin方法求解电磁波的多区域色散时域电磁积分方程

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摘要

The convolution quadrature (CQ) approach to the solution of the time domain integral equations of electromagnetics has several important advantages over the more conventional temporal Galerkin (TG) approaches. Chief among these are its highly predictable stability properties, and its applicability to dispersive media. The primary drawback of CQ-based approaches is that their model of the interaction between basis functions tends to have a lingering time history; that is, they give rise to a convolution kernel that is unnecessarily languorous. To shorten this interaction, the work presented here employs a hybrid method which combines the CQ approach with a TG approach to achieve a faster simulation with minimal dispersion in nondispersive media. In dispersive media, where the inefficiency of the CQ approach is less pronounced, CQ is left in tact. Numerical results will demonstrate that the approach is accurate and efficient for the computation of scattering from dispersive media.
机译:与电磁波的时域积分方程的解相比,卷积正交(CQ)方法具有比传统的时间Galerkin(TG)方法更重要的优点。其中最主要的是其高度可预测的稳定性,以及其在分散介质中的适用性。基于CQ的方法的主要缺点是它们的基本函数之间的交互模型往往具有较长的时间历史。也就是说,它们产生了不必要的卷积核。为了缩短这种相互作用,此处介绍的工作采用了一种混合方法,该方法将CQ方法与TG方法相结合,以实现在非分散介质中具有最小分散的更快仿真。在CQ方法效率不高的分散介质中,CQ保持不变。数值结果将证明该方法对于计算来自分散介质的散射是准确而有效的。

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