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Phase relation for the signaling from an Automotive Ethernet 100BASE-T1 communication system

机译:来自汽车以太网100BASE-T1通信系统的信令的相位关系

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In the automotive industry the customer demand for higher safety and comfort leads to an increasing number of electrical devices in the vehicle. Therefore, a trend from the classical bus systems (e.g. CAN: controller area network) to commercial point-to-point (P2P) wide band communication systems, which are adopted to the automotive environment (e.g. Automotive Ethernet 100BASE-T1 and 1000BASE-T1), can be observed. These new communication systems are based on a full duplex communication and therefore signal transmission is taking place in both directions (bidirectional). As both signals contribute to the electromagnetic emission from the Ethernet link, the phase relation from the bidirectional signaling is required. Further, the differential mode signal (via mode conversion from the communication channel) and the common mode signal from the ECU contribute to the electromagnetic emission of the communication system. Therefore, the phase relation of these signal modes is also necessary, in order to safeguard the Ethernet system in terms of EMC. In this work, two measurement test setups are introduced in order to determine the corresponding time domain signal and calculate the phase relations via FFT, which allows the determination of the phase relations from all signals and signal modes from an Automotive Ethernet communication link.
机译:在汽车工业中,客户对更高的安全性和舒适性的需求导致车辆中电子设备的数量不断增加。因此,从经典总线系统(例如CAN:控制器局域网)到商用点对点(P2P)宽带通信系统的趋势已被汽车环境所采用(例如,汽车以太网100BASE-T1和1000BASE-T1) ),可以观察到。这些新的通信系统基于全双工通信,因此信号传输在两个方向(双向)上进行。由于这两个信号都会影响以太网链路的电磁辐射,因此需要双向信令的相位关系。此外,差模信号(通过来自通信通道的模式转换)和来自ECU的共模信号也会导致通信系统的电磁辐射。因此,这些信号模式的相位关系也是必要的,以便在EMC方面保护以太网系统。在这项工作中,引入了两种测量测试设置,以便确定相应的时域信号并通过FFT计算相位关系,从而可以从所有信号和来自汽车以太网通信链路的信号模式确定相位关系。

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