孔径建模和仿真增强性能

R. Pirich, I. Lu, P. Anumolu, Kristie D'Ambrosio
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引用次数: 0

摘要

当前和未来的情报、监视和侦察(ISR)系统正变得越来越复杂,对易受各种电磁干扰源和兼容性(EMI/EMC)影响的孔径的要求越来越高。经过验证的电磁环境效应建模和仿真对于提高ISR的整体性能至关重要。当前战术作战空间呈现出复杂的作战电磁环境。电磁建模和仿真工具集面临的挑战包括射频设计的现实而复杂的问题,必须用更少的计算时间来解决。孔径相关的设计,建模和仿真侧重于天线增益特性,开发相控阵天线概念以及分析和最小化电子系统及其环境元素之间的电磁相互作用。在特定的平台结构中,随着孔径的间距越来越近,由于近场和远场耦合以及复合互调,可能会产生干扰。这种干扰可能包括放大器失真、输入/输出功率限制、期望信号和不希望信号之间相互作用造成的干扰、输入阻抗、辐射阻抗、电流分布和辐射模式的变化。诺斯罗普·格鲁曼公司与纽约大学理工学院合作,正在开发先进的电磁建模和仿真工具集,包括第一性原理电磁代码,如矩量法(MoM)和多级快速多极方法(MLFMM),以执行近场耦合的全波分析,并获得每个局部孔径系统的有效辐射模式。随着这些平台发展成为更复杂、多任务的ISR网络系统,为了确保在主动ISR期间足够的无干扰运行,可能需要减少EMI。新平台将有独特的电磁兼容性问题,这需要现象学和验证的第一主电磁建模,以便平台可以提供广泛的宽带无源传感器阵列和有源阵列。本文将从最基本的到更复杂的干扰现象以及最小化这些影响的方法进行综述。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Aperture modeling & simulation for enhanced performance
Current and future intelligence, surveillance and reconnaissance (ISR) systems are becoming increasingly more electronically complex with requirements for apertures that are susceptible to various sources of electromagnetic interference and compatibility (EMI/EMC). Validated electromagnetic environmental effects modeling and simulation of these advanced apertures is critical to enhance overall ISR performance. The current tactical battlespace presents a complex operating electromagnetic environment. Electromagnetic modeling and simulation toolsets are faced with challenges including RF design of realistic but complex problems which must be solved using less computation time. Aperture-related design, modeling and simulation focuses on antenna gain characteristics, developing phased array antenna concepts as well as analyzing and minimizing the electromagnetic interactions among elements of an electronic system and its environment. As apertures become more closely spaced together on a specific platform architecture, interference may occur as a result of both near and far field coupling as well as cosite intermodulation. This interference can involve amplifier distortion, limits on input/output power, interferences due to interaction between desired and unwanted signals, changes in input impedance, radiation impedance, current distribution and radiation patterns. Northrop Grumman, in collaboration with the Polytechnic Institute of New York University, are developing advanced electromagnetic modeling and simulation toolsets including first principle electromagnetic codes, such as method of moments (MoM) and Multilevel Fast Multipole Method (MLFMM), to perform full wave analysis of near field coupling and obtain the effective radiation patterns for each of the localized aperture systems. A reduction in EMI may be required in order to ensure enough interference free operation during active ISR, as these platforms evolve into more complex, multi-mission ISR networked systems. New platforms are going to have unique electromagnetic compatibility issues that require both phenomenology and validated first principal electromagnetic modeling so that the platform can provide a broad array of wideband passive sensors as well as active arrays. This paper will review very basic to more complicated interference phenomena and approaches to minimize these effects.
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