一种用于星载LEO卫星接收机的新型双锁相环中频块

Zia ul Haq, Bilal Hassan, M. Yousaf, H. Zahid
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引用次数: 0

摘要

通常,星上LEO(低地球轨道)卫星接收机工作在极低的载波功率水平,并要求高灵敏度的有效解调。这些接收机不仅应该能够在低输入信噪比(信噪比)下工作,而且还能够用不同的功率电平(取决于卫星轨道和工作频率)补偿可观的多普勒频移。因此,有效的低轨道卫星接收机应具有较大的动态范围,并应能够补偿可观的多普勒频移。在传统的卫星接收机中,中频块(负责解调和频率补偿)主要使用福斯特西利或基于单频合成器的方法设计。基于Foster Seeley的方法具有良好的动态范围,但对接收机电子设备产生的带内噪声非常敏感。另一方面,单频合成器方法具有较好的抗噪声能力,但不能提供可观的动态范围、高灵敏度和低载波输入功率的工作。因此,为了满足这些相互矛盾的要求,窄带LEO卫星TC接收机中频块的设计成为一项具有挑战性的任务。本文采用了一种新颖的双锁相环设计技术来满足远程控制接收机中频块的上述性能要求。采用第一锁相环对载波进行解调,提高了载波的噪声性能,实现了高效的多普勒补偿,同时增加第二锁相环,保证了低载波输入功率、可观的动态范围、高灵敏度和良好的噪声性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel dual PLL if block for on-board LEO satellite receivers
Generally, on-board LEO (Low Earth Orbit) satellite receivers work at extremely low carrier power levels and require high sensitivity for efficient demodulation. These receivers should not only be capable of operating at low input SNR (Signal to Noise Ratio) but also able to compensate an appreciable Doppler Frequency shift with varying power levels (depending upon the satellite orbit and operating frequency). Thus an efficient LEO satellite receiver should possess a large dynamic range and should be able to compensate an appreciable Doppler shift. In conventional satellite receivers, the IF block (which is responsible for demodulation and frequency compensation) are mostly designed using either the Foster Seeley or single Frequency synthesizer based approach. The Foster Seeley based approach has a good dynamic range but is very sensitive to the in-band noise generated by receiver electronics. On the other hand, single frequency synthesizer approach has a better noise immunity but it is unable to provide appreciable dynamic range, high sensitivity and low carrier input power operation. Therefore, in order to meet these contradictory requirements, the design of IF (Intermediate Frequency) block for narrow band LEO satellite TC receivers becomes a challenging task. In this paper, a novel dual PLL (Phase Locked Loop) design technique has been employed to cater for all the above performance requirements in telecommand receiver's IF block. First Phase Locked Loop is used to demodulate the carrier with improved noise performance and efficient Doppler compensation while second PLL is added to ensure the desired low carrier input power operation, appreciable dynamic range and high sensitivity and good noise performance.
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