基于混合相位编码的天气雷达多脉冲二次回波干扰抑制研究

Multi-Pulse Second-Trip Echo Suppression of Weather Radar Based on Hybrid SZ Phase Coding

  • 摘要: 多普勒天气雷达存在“多普勒两难”问题,会导致观测结果存在严重的二次回波干扰。当前固态体制的天气雷达一般通过长短脉冲组合波形以平衡探测距离和探测威力,但此时长短脉冲可能都会出现二次回波,造成更复杂的回波混叠干扰,会导致目标位置和强度误判,严重降低天气雷达谱矩估计性能。当前研究工作广泛使用相位编码技术抑制二次回波干扰,但难以解决长短脉冲混叠下的二次回波干扰。本文提出了一种基于混合相位编码的二次回波抑制方法,可解决多种发射脉冲混叠下的二次回波干扰问题。首先建立了多普勒天气雷达发生长短脉冲混叠和二次回波的混合干扰信号模型;其次基于SZ(16/64)编码准则设计了相对相位差为πi2/8样式的混合编码序列,对发射长/短脉冲组合信号分别进行相位调制,通过优化设计相对相位差确保正确回波能够得到完整解调,干扰项出现编码交叉项,并证明了交叉项也符合SZ编码形式,因此可以达到SZ编码的最优干扰抑制效果;最后基于天气雷达实测数据进行了等效试验,定量分析了所提方法对谱矩估计性能的改善效果,可显著降低谱矩估计结果的均方根误差,有效提升谱矩估计性能。

     

    Abstract: ‍ ‍Doppler weather radar is subject to the “Doppler Dilemma” which can introduce severe second-trip echo interference in observational data. Modern solid-state weather radars typically employ a combination of long- and short-pulse waveforms to balance detection range and sensitivity. However, second-trip echoes can originate from long and short pulses, resulting in more complex echo aliasing interference. This phenomenon can lead to misjudgments of target positions and intensities, significantly degrading the spectral moment estimation performance of weather radars. While existing research widely employs phase coding techniques to suppress second-trip echo interference, these approaches generally fail to address the challenges posed by combined long/short-pulse transmissions. This paper proposes a hybrid phase coding-based method for second-trip echo suppression, specifically designed to mitigate interference from multiple transmitted pulse types. First, a signal model is established to represent the mixed interference caused by aliased long- and short-pulse second-trip echoes in Doppler weather radar. Then, a hybrid phase coding sequence is developed, incorporating a specific relative phase difference pattern, πi2/8, based on the SZ(16/64) coding criterion. This sequence is applied to phase-modulate the combined long/short-pulse transmission signals. By optimizing the relative phase differences, the method enables complete demodulation of valid echoes while introducing coding cross terms into the interference components. Further, these cross terms conform to the SZ coding structure, thereby achieving optimal suppression of interference within the SZ coding framework. Finally, equivalent experiments using real weather radar data quantitatively validate the proposed method’s effectiveness. Results show a significant improvement in spectral moment estimation performance, demonstrated by a substantial reduction in the root mean square error (RMSE) of estimation outcomes. This confirms the method’s ability to enhance the accuracy and reliability of weather radar observations.

     

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