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Diagnosis of plant-wide oscillation through data-driven analysis and process understanding

机译:通过数据驱动的分析和过程理解来诊断全厂范围的振动

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Disturbances that propagate throughout a plant due to recycle streams, heat integration or other means can have an especially large impact on product quality and running costs. There is thus a motivation for automated detection of a plant-wide disturbance and for determination of the root cause so that the disturbance may be removed. In this article, data-driven techniques are used to diagnose a plant-wide oscillation in an Eastman Chemical Company plant. A numerical non-linearity index derived from routine measurements was able to suggest the root cause. Process understanding possessed by the plant control engineers then enhanced the data-driven analysis, for instance by identifying a proxy measurement for an unmeasured flow through the valve suspected of being the root cause. In situ tests of just one valve confirmed the suspected root cause and the plant-wide oscillation disappeared after repairing the valve. The diagnosis was right first time and the maintenance effort was thus minimized. The success of the study suggests there exists a fruitful direction for future research in the automated linkage of data-driven analysis with information about the structure and connectivity of the process.
机译:由于循环流,热集成或其他手段而在整个工厂中传播的故障可能会对产品质量和运行成本产生特别大的影响。因此,存在用于自动检测全厂干扰并确定根本原因的动机,从而可以消除干扰。在本文中,数据驱动技术用于诊断伊士曼化学公司工厂内的整个工厂范围内的振荡。由常规测量得出的数值非线性指数能够说明根本原因。然后,工厂控制工程师对过程的了解会增强数据驱动的分析,例如,通过识别出怀疑是根本原因的流经阀门的未测流量来确定代理测量。仅对一个阀门进行的现场测试证实了疑似的根本原因,并且在维修阀门后,整个工厂范围的振荡都消失了。第一次诊断是正确的,因此维护工作量降至最低。研究的成功表明,在数据驱动的分析与流程的结构和连通性信息的自动链接方面,未来的研究方向是富有成果的。

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