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高海况下具有破浪的导电/介电舰船与海表面的复合反向散射特性。

Composite Backscatter Characteristics of Conductive/Dielectric Ships and Sea Surfaces with Breaking Waves under High Sea Conditions.

机构信息

School of Electronic Engineering, Xi'an University of Posts & Telecommunications, Xi'an 710121, China.

China Academy of Space Technology, Xi'an 710100, China.

出版信息

Sensors (Basel). 2023 May 19;23(10):4904. doi: 10.3390/s23104904.

Abstract

When a radar detects marine targets, the radar echo is influenced by the shape, size and dielectric properties of the targets, as well as the sea surface under different sea conditions and the coupling scattering between them. This paper presents a composite backscattering model of the sea surface and conductive and dielectric ships under different sea conditions. The ship scattering is calculated using the equivalent edge electromagnetic current (EEC) theory. The scattering of the sea surface with wedge-like breaking waves is calculated using the capillary wave phase perturbation method combined with the multi-path scattering method. The coupling scattering between ship and sea surface is obtained using the modified four-path model. The results reveal that the backscattering RCS of the dielectric target is significantly reduced compared with the conducting target. Furthermore, the composite backscattering of the sea surface and ship increases significantly in both HH and VV polarizations when considering the effect of breaking waves under high sea conditions at low grazing angles in the upwind direction, especially for HH polarization. This research offers valuable insights into optimizing radar detection of marine targets in varying sea conditions.

摘要

当雷达探测到海洋目标时,雷达回波会受到目标的形状、大小和介电特性以及不同海况下的海面以及它们之间的耦合散射的影响。本文提出了一种在不同海况下的海面和导电与介电舰船的复合后向散射模型。舰船的散射采用等效边缘电磁流(EEC)理论进行计算。利用结合多路径散射方法的毛细波相位微扰法来计算具有楔形破碎波的海面散射。利用修正的四路径模型得到舰船与海面的耦合散射。结果表明,与导电目标相比,介电目标的后向散射 RCS 显著降低。此外,在逆风方向低掠射角时,考虑高海况下破碎波的影响后,海面和舰船的复合后向散射在 HH 和 VV 极化下都显著增加,特别是在 HH 极化下。本研究为优化不同海况下的雷达对海洋目标的探测提供了有价值的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a99c/10223374/0bb40672b4cf/sensors-23-04904-g001.jpg

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