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A systematic fault root causes tracing method for process systems

机译:一种过程系统的系统故障根源追踪方法

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Fault diagnosis and abnormal event management are key issues in process industry. For decades of research, many approaches have been proposed and put into practice. The Signed Digraph (SDG) model based diagnosis approach seems to be more effective in tracing the root causes of abnormality in large scale process system like petrochemical industry, especially when system becomes more complex nowadays [1]. Bu t SDG model based diagnosis approach has two inherent deficiencies. Firstly, the SDG models developed by current me thod often hold false causalities which will cause spurious diagnosis results. Secondly, the diagnosis result does not indicate the mechanical or electrical root fault causes directly. The root mechanical or electrical fault causes are more helpful for maintenance than root abnormal state variables given by SDG results. According to these deficiencies of SDG, a systematic root fault causes tracing method is proposed. First of all, causal ordering analysis based on the many physicochemical equations and empirical formulas in process systems is introduced to construct accurate SDG models. Then, the hierarchical dependent relation between state variable of SDG and its root failure causes is described by polychromatic sets. The dependent relation is further transformed into Fault Trees (FTs) which are used to deduce the root faults causes. In this method, the SDG model and the FTs are integrated into one systematic diagnosis model. The top level of this model is used to represent state variables of different equipments in a process system, and the bottom level are used to deduce the root fault causes of the equipment abnormality. This method integrates the advantages of SDG and FTA. Two examples are illustrated to show the modeling and diagnosis process, and thereby verify the practicality and validity of the proposed approach in process system fault tracing.
机译:故障诊断和异常事件管理是过程工业中的关键问题。几十年来的研究,已经提出了许多方法并将其付诸实践。基于签名图(SDG)模型的诊断方法似乎在追踪大规模过程系统(如石化行业)中异常的根本原因上更有效,尤其是在当今系统变得更加复杂的情况下[1]。基于SDG模型的诊断方法具有两个固有缺陷。首先,当前方法开发的SDG模型经常具有错误的因果关系,这将导致虚假的诊断结果。其次,诊断结果不能直接说明机械或电气故障的根本原因。根本的机械或电气故障原因比SDG结果给出的根本异常状态变量更有助于维护。针对SDG的这些不足,提出了一种系统的根源故障原因跟踪方法。首先,介绍了基于过程系统中许多物理化学方程式和经验公式的因果排序分析,以构建准确的SDG模型。然后,通过多色集描述了SDG的状态变量与其根故障原因之间的等级相关关系。从属关系被进一步转换为故障树(FTs),用于推论根本的故障原因。在这种方法中,将SDG模型和FTs集成到一个系统的诊断模型中。该模型的顶层用于表示过程系统中不同设备的状态变量,底层用于推断设备异常的根本故障原因。这种方法整合了SDG和FTA的优点。通过两个例子来说明建模和诊断过程,从而验证了该方法在过程系统故障跟踪中的实用性和有效性。

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