A Signal demodulation algorithm for high-speed inter-satellite link based on double closed-loop structure

Peihan Yu, Hongwei Zhao, Chengkai Tang, Bernie Wang
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Abstract

The inter-satellite link plays an important role in the process of realizing global connection, which is expected to be fast, efficient and seamless. It also builds an integrated communication network between space and earth. Since the inter-satellites are generally far away from each other, and they move relatively at high speed in their own respective orbits, which will bring large path loss and Doppler shift. When using high-frequency communication, the Doppler shift is more obvious, which has a serious impact on the data recovery at the receiver and cannot meet the reliability requirements for communication. Aiming at the above problems, this paper proposes a new demodulation algorithm based on double closed-loop structure. The Walker inter-satellite link is adopted firstly, then we designed the transmission frame structure. Finally we propose a complete modulation and demodulation scheme. In the demodulation scheme, We use the Delayed Auto Correlation (DAC) method for the super-frame header to improve the capture performance when the signal to noise ratio (SNR) is low. Then, for the spread spectrum signal, an improved timing error detection method is proposed. It reduces the processing bandwidth, and improves the accuracy of timing error detection under the condition of low SNR. What’s more, it is easy to implement. The simulation results show that when the SNR is greater than 13dB, the proposed algorithm can quickly complete the synchronization, and the bit error rate (BER) is less than 10-6, which meets the requirements of the received signal level of the inter-satellite link.
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一种基于双闭环结构的高速星间链路信号解调算法
卫星间链路在实现快速、高效、无缝的全球连接过程中发挥着重要作用。它还建立了空间与地球之间的综合通信网络。由于星间卫星一般距离较远,且在各自轨道上的运动速度相对较快,会带来较大的路径损耗和多普勒频移。在使用高频通信时,多普勒频移更为明显,严重影响接收机的数据恢复,不能满足通信的可靠性要求。针对上述问题,本文提出了一种新的基于双闭环结构的解调算法。首先采用了Walker星间链路,然后设计了传输帧结构。最后,我们提出了一个完整的调制解调方案。在解调方案中,我们对超帧报头采用延迟自相关(DAC)方法,以提高在信噪比较低时的捕获性能。然后,针对扩频信号,提出了一种改进的定时误差检测方法。减小了处理带宽,提高了低信噪比条件下定时误差检测的精度。更重要的是,它很容易实现。仿真结果表明,当信噪比大于13dB时,所提算法能快速完成同步,误码率(BER)小于10-6,满足星间链路接收信号电平要求。
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