Near-field scattering centre modelling for complex targets

IF 1.5 4区 管理学 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC Iet Radar Sonar and Navigation Pub Date : 2024-12-04 DOI:10.1049/rsn2.12667
Yanxi Chen, Kunyi Guo, Zhouyang Liu, Xinqing Sheng
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Abstract

The parametric scattering centre (SC) model of the target has been widely used in the rapid simulation of radar image. Most of the existing SC models are suitable for far-field scattering where the radar cross section (RCS) is independent of the distance from the target to the radar. However, when the electromagnetic scattering of the target is in the near-field region of radiation, the RCS of the target changes dramatically in distance. The existing SC model cannot characterise these important near-field characteristics. In this paper, the near-field model with the dependence description of the SC on the distance is proposed. Firstly, the scattering characteristics of several main geometric structures of the extended target in the near-field radiation region are analysed. Then, on the basis of far-field SC model expressions, the description of the relationship between amplitude and phase of the SC model and distance is added. Finally, the correctness of the near-field SC model is verified by comparing with the accurate full-wave numerical method. In order to further illustrate the practicability of the near-field SC model, an actual aircraft target is used. The results proved that the near-field SC model has the advantages of high accuracy and high computational efficiency.

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复杂目标近场散射中心建模
目标的参数散射中心模型在雷达图像的快速仿真中得到了广泛的应用。现有的SC模型大多适用于远场散射,其中雷达截面(RCS)与目标到雷达的距离无关。然而,当目标的电磁散射处于辐射的近场区域时,目标的RCS随距离变化较大。现有的SC模型不能描述这些重要的近场特征。本文提出了一种近场模型,并描述了SC对距离的依赖关系。首先,分析了扩展目标几种主要几何结构在近场辐射区的散射特性。然后,在远场SC模型表达式的基础上,加入SC模型振幅、相位与距离的关系描述。最后,通过与精确全波数值方法的比较,验证了近场SC模型的正确性。为了进一步说明近场SC模型的实用性,以实际飞机目标为例进行了仿真。结果表明,近场SC模型具有精度高、计算效率高等优点。
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来源期刊
Iet Radar Sonar and Navigation
Iet Radar Sonar and Navigation 工程技术-电信学
CiteScore
4.10
自引率
11.80%
发文量
137
审稿时长
3.4 months
期刊介绍: IET Radar, Sonar & Navigation covers the theory and practice of systems and signals for radar, sonar, radiolocation, navigation, and surveillance purposes, in aerospace and terrestrial applications. Examples include advances in waveform design, clutter and detection, electronic warfare, adaptive array and superresolution methods, tracking algorithms, synthetic aperture, and target recognition techniques.
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