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An optically powered fibre network for heterogeneous subscribers

机译:异构用户的光导纤维网络

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In optically powered networks, glass fibres are used for transmitting optical communication signals as well as optical energy for electrically powered devices. Advantages over existing power delivery technologies are: immunity to electromagnetic interference, spark-free power for safety-critical applications, slim cables, simple installation and reduced maintenance cost. Applications relate to security of public spaces and buildings, down-hole exploration, medical endoscopes, and to communications in the context of remote RF antennas and passive optical networks (PON). An optically powered network can connect widely differing subscribers with low/high bandwidth requirements, asynchronous/synchronous operation, and low/high priority, e.g., energy-preserving small-bandwidth subscribers with ultra-low duty cycles and low network priority (e.g., temperature sensors) in combination with wide-bandwidth subscribers operating at large duty cycles and high priority (e.g., video conferencing). Optical energy is supplied centrally from an access point, and this results in a combined star and tree-like network topology. As a consequence, subscribers communicate with the CO only, and therefore a standard carrier sense multiple access (CSMA) protocol cannot handle the data exchange. We present optically powered subscriber hardware and demonstrate a low-energy medium-access control (LE-MAC) protocol that extends the IEEE 802 standard, allows random and scheduled medium access of subscribers, and, by quality-of-service support, efficiently uses the available resources, namely channel bandwidth and optically supplied energy.
机译:在光网络中,玻璃纤维用于传输光通信信号以及光能,以用于电动设备。与现有电力输送技术相比,其优势在于:抗电磁干扰,对安全至关重要的应用提供无火花电源,纤细的电缆,简单的安装并降低了维护成本。应用涉及公共场所和建筑物的安全性,井下勘探,医疗内窥镜以及远程RF天线和无源光网络(PON)中的通信。光网络可以连接具有低/高带宽需求,异步/同步操作和低/高优先级的广泛不同的用户,例如具有超低占空比和低网络优先级(例如温度)的节能小带宽用户传感器)与在高占空比和高优先级(例如,视频会议)下运行的宽带用户结合使用。光能量从接入点集中提供,这导致了星形和树状网络拓扑的组合。结果,订户仅与CO通信,因此标准的载波侦听多路访问(CSMA)协议无法处理数据交换。我们介绍了光功率用户硬件,并演示了一种低能量介质访问控制(LE-MAC)协议,该协议扩展了IEEE 802标准,允许对用户进行随机和计划的介质访问,并通过服务质量支持有效地使用可用资源,即信道带宽和光提供的能量。

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