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Signal-Flow-Based Graphs for Failure-Mode Analysis of Systems with Control Loops

机译:基于信号流的图形,用于带有控制回路的系统的故障模式分析

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Control loops make failure-mode analysis via fault trees extremely difficult. This paper proposes a new approach based on signal flow graphs to model systems with control loops. Mason's Rule is applied to assess the effect of the loops. The top event of the system is defined by an inequality on a node-variable of the signal flow graph. Basic failures are modeled by source variables. Cut-off failures of the control loops are also considered. The method is useful for uncovering failure modes leading to the top event in complicated systems with control loops. General steps to apply the method to a system are: 1. Draw a SFG for the system. 2. Model basic failures by source variables. 3. Select a node-variable to define a top event. 4. Represent the top event in terms of the source variables, using Mason's Rule. 5. Discretize the source variables. 6. Classify loop states. 7. For each loop state, obtain system failure modes, using a search tree like Fig. 5. 8. Review the failure modes by more accurate simulation models. Any model is an approximation of an actual system. Thus, the resulting failure modes like those in Table 3 should be examined again, using past experience, more accurate simulation models, etc. The method should be viewed primarily as useful tool for uncovering failure modes in which complicated systems with the control loops fail.
机译:控制回路使通过故障树进行故障模式分析变得极为困难。本文提出了一种基于信号流图的新方法来对具有控制回路的系统进行建模。梅森规则用于评估循环的效果。系统的最高事件由信号流图的节点变量上的不等式定义。基本故障由源变量建模。还应考虑控制回路的切断故障。该方法对于在具有控制回路的复杂系统中发现导致顶级事件的故障模式很有用。将方法应用于系统的一般步骤如下:1.为系统绘制一个SFG。 2.通过源变量对基本故障进行建模。 3.选择一个节点变量以定义一个顶级事件。 4.使用梅森规则,以源变量的形式表示最重要的事件。 5.离散化源变量。 6.对循环状态进行分类。 7.对于每个循环状态,使用如图5所示的搜索树获取系统故障模式。8.通过更精确的仿真模型查看故障模式。任何模型都是实际系统的近似值。因此,应使用过去的经验,更准确的仿真模型等再次检查如表3所示的最终故障模式。该方法应主要被视为揭示具有控制回路的复杂系统发生故障的故障模式的有用工具。

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