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An extrapolation technique for solving a class of large-body scattering problems by using the FDTD

机译:使用FDTD解决一类大体散射问题的外推技术

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An extrapolation technique has been devised in the frequency domain for solving a class of large, two-dimensional and body of revolution (BOR) type of scattering problems, both with and without edges and tips. In this approach, one first derives the solution for the induced current on a scatterer at two lower frequencies, where the body size is still manageable, and the problem can be treated by using conventional, numerically-rigorous techniques. Next, one decomposes the computed current distribution in terms of its constituent travelling wave components, and subsequently extrapolates the behavior of these components to frequencies that are much too high to be handled directly by the conventional techniques. The objective of this paper is two-fold. First, to take advantage of the inherent characteristics of the FDTD method that it can handle larger problems than the MoM, and that it yields the field solution over a wide band of frequencies with a single run. Hence, the extrapolation can be carried out by using a large number of lower frequency solutions to attain better accuracy than is possible with just two. Second, to demonstrate that the extrapolation is also possible for a class of three-dimensional scatterers with edges and corners, e.g., a cube, even at grazing incidence where the asymptotic methods are known to suffer from accuracy problems.
机译:已经在频域中设计了一种外推技术,用于解决一类大的,二维的和旋转体(BOR)类型的散射问题,包括和不包括边缘和尖端。在这种方法中,首先要求出散射体在两个较低频率上的感应电流的解,在这些较低的频率下仍可以控制人体大小,并且可以使用常规的严格数字技术来解决该问题。接下来,根据其构成的行波分量分解计算出的电流分布,然后将这些分量的行为外推到太高的频率,以至于无法由常规技术直接处理。本文的目的是双重的。首先,利用FDTD方法的固有特性,它可以处理比MoM更大的问题,并且一次运行就可以在很宽的频率范围内提供现场解决方案。因此,可以通过使用大量较低频率的解决方案来进行外推,以获得比仅使用两个解决方案可能获得的更好的精度。第二,证明即使在已知渐近方法存在精度问题的掠入射情况下,对于具有边缘和拐角的一类三维散射体(例如立方体),外推也是可能的。

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