Doppler Spectrum Analysis of Ground Echoes from Spaceborne Doppler Scatterometer
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摘要: 海表流场是重要的海洋和气候变量,多普勒散射计因为其全球覆盖测量以及直接观测亚中尺度海表全流场的能力,已经成为海洋遥感观测技术研究的前沿。流场多普勒的定标和定量化测量是实现流场观测的基础和前提,是需要解决的关键核心问题。本文建立了地面散射回波仿真模型,对潜在可用于星载散射计外定标的自然地面扩展目标的多普勒谱特性进行了仿真分析,比较了其在不同平台运动速度、入射角、方位角下的变化特征。结果表明,平台运动速度是影响多普勒谱特性的主要因素,入射角和方位角的变化也有明显影响。对不同高度起伏的地面扩展目标的多普勒谱特性仿真结果表明,高度起伏越大的目标其多普勒谱偏移越大,同时中心高度的变化对于多普勒谱特性的影响则不明显。因此在定标目标的选择中,应选择较为平坦的扩展目标。最后提出了对地面回波多普勒频偏进行了分析,并使用DEM模型进行验证。探究结论将为多普勒散射计定标的后续研究提供支持。Abstract: Sea surface current fields are important oceanic and climatic variables. Due to its capability for global coverage and direct observation of sub-mesoscale sea surface current fields, the Doppler scatterometer has become a frontier in ocean remote sensing technology research. The calibration and quantitative measurement of the Doppler scatterometer are the foundations and prerequisites for current field observations, as well as a critical core issue that needs to be addressed. In this study, a ground-based scattering echo simulation model was developed to simulate and analyze the Doppler spectrum characteristics of potential natural ground extended targets that could be used for external calibration of spaceborne scatterometers. The changes in these characteristics were compared under different platform motion speeds, incident angles, and azimuth angles. The results indicate that platform motion speed is the primary factor affecting Doppler spectrum characteristics, while variations in incident and azimuth angles also have significant impacts. Simulation results for ground extended targets with different height variations show that the greater the height variation of the target, the larger the Doppler spectrum shift, while changes in the central height have minimal impact on the Doppler spectrum characteristics. Therefore, in the selection of calibration targets, relatively flat extended targets should be chosen. Finally, an analysis of the ground echo Doppler frequency shift was conducted and validated using the DEM model. The findings of this study will provide support for further research on Doppler scatterometer calibration.。
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