零中频雷达接收机的模拟IQ损伤:分析、测量和数字补偿

G. Vallant, M. Epp, W. Schlecker, U. Schneider, L. Anttila, M. Valkama
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引用次数: 25

摘要

我们将零中频或零差无线电架构作为小型雷达接收机的可行方法。虽然零中频有利于集成,但一些固有的模拟损伤限制了可实现的动态范围。最主要的非理想性是IQ支路的增益和相位不平衡、混频器非线性和直流偏置。在IQ不平衡的情况下,精心设计的接收器最多可以实现30-40 dB的图像抑制比(IRR)。此外,随着带宽(BW)的增加,IQ不平衡倾向于频率依赖。需要研究的是,复杂的数字后处理是否能够为脉冲多普勒雷达提供足够的动态范围。在建立一些理论背景和提出数字校正方法之后,我们将介绍在大带宽零中频接收器上产生的频率相关IQ不平衡的硬件测量。尽管使用离线校准可以实现显著的改进,但由于温度变化引起的时变漂移会降低可实现的IRR。因此,应采用基于自适应循环的算法来跟踪这些变化。然而,复杂基带(BB)的雷达啁啾信号不能直接使用,因为它们不是圆形的。为了恢复估计互补自相关函数(CACF)的圆度,我们建议事先对操作数据应用数字带阻。高IRR值在技术上是可行的:数字辅助与最先进的射频电路设计相结合,可以为集成接收器解决方案提供足够的性能铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analog IQ impairments in Zero-IF radar receivers: Analysis, measurements and digital compensation
We address the Zero-IF or homodyne radio architecture as a pursuable way for small Radar receivers. While Zero-IF is beneficial for integration, several inherent analog impairments place a limit on the achievable dynamic range. The most dominant non-idealities are gain and phase imbalance in the IQ branches, mixer nonlinearity, and DC Offset. In the case of IQ Imbalance, careful receiver design can at best achieve an Image Rejection Ratio (IRR) of 30-40 dB. Also, IQ imbalance tends to be frequency-dependent with increasing bandwidth (BW). It has to be investigated, whether sophisticated digital post-processing is able to deliver a dynamic range sufficient for Pulse-Doppler Radar. After establishing some theoretical background and proposing digital correction methods, we will present hardware measurements of frequency-dependent IQ imbalance made on a Zero-IF receiver with large bandwidth. Despite significant improvements can be achieved using an offline calibration, time-varying drifts due to temperature changes will degrade the achievable IRR. Therefore adaptive circularity-based algorithms should be applied to track those changes. However, Radar Chirp signals at complex baseband (BB) cannot be used directly, as they are not circular. To restore the circularity for estimating the Complementary Autocorrelation Function (CACF), we propose applying a digital band-stop to the operational data beforehand. Highly increased IRR values are technically feasible: Digital Assistance acting jointly with state-of-the-art RF circuit design can pave the way for adequate performance in integrated receiver solutions.
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