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A bi-directional fixed-latency clock distribution system

机译:双向固定延迟时钟分配系统

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The Askar'yan Radio Array (ARA) Collaboration is constructing a giant array of radio-frequency antennas deployed in the ice near the geographic South Pole. This experiment aims at detecting the extremely weak signal of neutrinos with energies in excess of 100 PeV from ultrahigh-energy cosmic ray interactions with the cosmic microwave background radiation. The antennas are located in shallow holes drilled to depths of 200 m and need high fidelity RF signal transmission over extended lengths to the data acquisition logic at the surface. We report on a transmission scheme whereby signals are digitized in the ice and the waveforms are digitally sent via high-speed serial links. Reconstruction algorithms require distribution of a low-jitter clock from the surface down to the digitization boards in the holes with knowledge of the overall time delay between the two clock domains. Previously, we designed a clock synchronization system using electrical signaling over CAT5. This year we have updated our solution to optical fibers using high speed transceiver blocks in Spartan-6 FPGAs. This note describes our improvements on the latter solution: technical details as well as methods of maintaining a fixed phase between two clocks after power cycles and resets.
机译:阿斯卡扬(Askar'yan)无线电阵列(ARA)合作组织正在构造一个巨大的射频天线阵列,这些天线部署在地理上南极附近的冰中。该实验旨在通过超高能宇宙射线与宇宙微波背景辐射的相互作用,检测能量超过100 PeV的中微子的极弱信号。天线位于钻孔深度为200 m的浅孔中,并且需要高保真度的RF信号在扩展长度范围内传输至地面的数据采集逻辑。我们报告了一种传输方案,通过该方案,信号在冰上被数字化,并通过高速串行链路以数字方式发送波形。重构算法要求在了解两个时钟域之间的总时间延迟的情况下,从表面向下到孔中的数字化板分配低抖动时钟。以前,我们设计了一种时钟同步系统,该系统使用基于CAT5的电信号传输。今年,我们更新了使用Spartan-6 FPGA中的高速收发器模块的光纤解决方案。本说明描述了我们对后一种解决方案的改进:技术细节以及在电源循环和复位后在两个时钟之间保持固定相位的方法。

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