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EMI effects and timing design for increased reliability in digitalsystems

机译:EMI效应和时序设计可提高数字系统的可靠性

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The failure modes of digital circuits subjected to low levels of electromagnetic interference (EMI) are examined. While low-level EMI will not cause static failures (false switching), it may cause dynamic failures by changing the propagation delays of critical signals. A parameter called delay margin is introduced to define the maximum allowable changes in propagation delay under which the circuit will continue to operate reliably. Experimental results are reported in which circuit immunity to EMI is shown to increase significantly when the delay margin is maximized. It is also shown that delay-insensitive circuits have infinite delay margins and are therefore immune to low-level EMI. It was observed experimentally that an oscillating loop subjected to EMI can become phase locked to the frequency of the interference. The second part of the paper describes a synchronization scheme that takes advantage of this phenomenon. The proposed scheme can be used to reduce errors due to synchronizer metastability on communication links between synchronous and asynchronous systems. A reference signal derived from the clock of the synchronous system is injected into a handshake loop, causing the data transfer rate to be locked to a subharmonic of the clock frequency. Both simulation and experimental results are given, showing that stable operation can be achieved over a wide range of parameters
机译:检查了遭受低水平电磁干扰(EMI)的数字电路的故障模式。虽然低电平EMI不会导致静态故障(错误切换),但可能会通过更改关键信号的传播延迟来导致动态故障。引入了一个称为延迟裕量的参数,以定义传播延迟的最大允许变化,在该变化下电路将继续可靠地工作。报道了实验结果,其中显示了当延迟裕量最大化时,电路对EMI的抵抗力显着提高。还表明,对延迟不敏感的电路具有无限的延迟余量,因此不受低电平EMI的影响。实验上观察到,遭受EMI的振荡环路可能会锁相到干扰频率。本文的第二部分描述了利用这种现象的同步方案。所提出的方案可以用于减少由于同步器和异步系统之间的通信链路上的同步器亚稳定性而引起的错误。来自同步系统时钟的参考信号被注入到一个握手环路中,从而使数据传输速率被锁定为时钟频率的次谐波。给出了仿真和实验结果,表明可以在广泛的参数范围内实现稳定运行

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