Industrial control systems present numerous challenges from the communication systems perspective: clock synchronization, deterministic behavior, low latency, high reliability, flexibility, and scalability. These challenges are mostly solved with standard technologies over Ethernet, e.g., Time-Sensitive Networking (TSN). As a research trend, it is expected that TSN will converge with wireless, leading to the Wireless TSN paradigm. Also, Wireless TSN is expected to be integrated with Ethernet TSN to create large-scale wired-wireless (Hybrid) TSN networks. The first step towards Hybrid TSN is the distribution of the clock reference from the wired to the wireless domain. In this paper, we leverage existing Ethernet TSN and wireless technologies implementations (Wi-Fi and w-SHARP) and we present two hardware architectures specifically engineered to enable the clock synchronization distribution among the network domains. The hardware architectures have been implemented over a System-on-Chip (SoC) Field Programmable Gate Array (FPGA) platform. We demonstrate through several experiments that the implementation is able to fulfill the synchronization performance required by TSN.
翻译:从通信系统的角度来看,工业控制系统提出了许多挑战:时钟同步、确定行为、低潜伏、高可靠性、灵活性和可缩放性。这些挑战大多通过在以太网上的标准技术来解决,例如时间感知网络(TSN)。作为一项研究趋势,预计SSN将与无线连接,从而形成无线的 TSN 模式。此外,无线 TSN预计将与Ethernet TSN 整合,以创建大型无线(Hybrid) TSN 网络。实现混合 TINSN的第一步是将时钟参考从有线到无线域。在本文件中,我们利用现有的Ethernet TSN和无线技术实施(W-Fi和W-SHARP),我们提出了两个专门设计硬件结构,以便在网络域之间实现时钟同步分布。硬件结构已经通过一个系统-C(Soc)现场可编程的门Array(FPGA)平台实施。我们通过若干实验来证明执行能够实现SN所要求的同步性。