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Sensor fault reconstruction and observability for unknown inputs, with an application to wastewater treatment plants

机译:传感器故障重建和可观察性(对于未知输入),应用于废水处理厂

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In this article, we propose a general methodology for identifying and reconstructing sensor faults on dynamical processes. This methodology is issued from the general identification theory developed in the previous papers (Busvelle, E., and Gauthier, J.-P. (2003), 'On Determining Unknown Functions in Differential Systems, with an Application to Biological Reactor', ESAIM: Control, Optimisation and Calculus of Variations, 9, 509-553; Busvelle, E., and Gauthier, J.-P. (2004), 'New Results on Identifiability of Nonlinear Systems', in 2nd Symposium on Systems, Structure and Control, Oaxaca, Mexico; Busvelle, E., and Gauthier, J.-P. (2005), 'Observation and Identification Tools for Non Linear Systems. Application to a Fluid Catalytic Cracker', International Journal of Control, 78, 208-234): in fact, this identification theory also provides a general framework for the problem of 'observability with unknown inputs'. Indeed, many problems of fault detection can be formulated as such observability problems, the (eventually additive) faults being just considered as unknown inputs. Our application to 'sensor fault detection' for wastewater treatment plants (WWTP) constitutes an ideal academic context to apply the theory: first, in this 3-5 case (3 sensors, 5 states), the theory applies generically and, second, any system is naturally under the 'observability canonical form' required to apply the basic high-gain observer from Gauthier and Kupka (Gauthier, J.-P., and Kupka, I. (1994), 'Observability and Observers for Nonlinear Systems', SIAM Journal on Control, 32, 975-994). A simulation study on the Bleesbruk WWTP is proposed to show the effectiveness of this approach.
机译:在本文中,我们提出了一种用于识别和重建动态过程中传感器故障的通用方法。这种方法是根据先前论文中开发的一般识别理论发布的(Busvelle,E.和Gauthier,J.-P.(2003),“确定微分系统中的未知函数,并将其应用于生物反应堆”,ESAIM) :变化的控制,优化和演算,9,509-553; Busvelle,E.和Gauthier,J.-P.(2004),'关于非线性系统可识别性的新结果',在第二届系统,结构和结构研讨会上Control,墨西哥瓦哈卡州; Busvelle,E。和Gauthier,J.-P。(2005),“非线性系统的观测和识别工具,在流体催化裂化器中的应用”,国际控制杂志,78,208- 234):实际上,这种识别理论还为“具有未知输入的可观察性”问题提供了一个通用框架。实际上,可以将许多故障检测问题表述为此类可观察性问题,(最终加性)故障仅被视为未知输入。我们在废水处理厂(WWTP)的“传感器故障检测”中的应用构成了应用该理论的理想学术背景:首先,在这种3-5种情况下(3个传感器,5个状态),该理论普遍适用,其次,任何系统自然是根据应用Gauthier和Kupka(Gauthier,J.-P.和Kupka,I.(1994),'非线性系统的可观察性和观察者')的基本高增益观察者所需的``可观察性规范形式''进行的, SIAM Journal of Control,32,975-994)。建议对Bleesbruk污水处理厂进行仿真研究,以证明该方法的有效性。

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