Impact of HV Battery Cables’ Emissions on the Signal Integrity of 2-Wire Ethernet Communication in Automotive Application

S. Jeschke, A. H. Razavi, J. Loos, J. Baerenfaenger
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引用次数: 8

Abstract

Beside the electrification of vehicle traction systems, the implementation of autonomous driving functions is the main future trend in the automotive sector. For the realization of autonomous driving a large number of sensors is required. Due to the large amount of data needed for autonomous driving, the data rates of the conventional communication systems are not sufficient and therefore, new communication systems such as 100Base-T1 are implemented in the vehicle architecture. On the other side, in electric and hybrid electric vehicles, the electrical traction system operates at voltages beyond 400 V in close proximity to the sensors and communication lines. To ensure the electromagnetic compatibility (EMC) of the overall vehicle, the traction system is entirely shielded and isolated form the other vehicle systems. However, the communication channel for the automotive Ethernet is realized using unshielded twisted pair (UTP) cable, which is prone to electromagnetic disturbances. As a result, the EMC coupling between these high voltage (HV) traction systems and the communication channels is an important aspect, which requires a comprehensive investigation. In this work a test setup consisting of an electric vehicle traction system is used in parallel to a 2-wire Ethernet communication via an UTP cable. The setup is used to investigate the impact of the disturbances from HV battery cables on the immunity and the signal integrity of the Ethernet communication.
汽车用高压电池电缆排放对2线以太网通信信号完整性的影响
除了车辆牵引系统的电气化,自动驾驶功能的实施是汽车行业未来的主要趋势。为了实现自动驾驶,需要大量的传感器。由于自动驾驶需要大量的数据,传统通信系统的数据速率是不够的,因此,在车辆架构中实现了100Base-T1等新型通信系统。另一方面,在电动和混合动力汽车中,电力牵引系统在超过400 V的电压下运行,靠近传感器和通信线路。为了保证整车的电磁兼容性,牵引系统与其他车辆系统完全隔离和屏蔽。然而,汽车以太网的通信通道是使用非屏蔽双绞线(UTP)电缆实现的,容易受到电磁干扰。因此,这些高压牵引系统与通信信道之间的电磁兼容耦合是一个重要的方面,需要进行全面的研究。在这项工作中,由电动汽车牵引系统组成的测试装置通过UTP电缆与2线以太网通信并行使用。该装置用于研究高压蓄电池电缆干扰对以太网通信抗扰度和信号完整性的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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