Silvio Simani Cesare Fantuzzi Ron J. Patton Simani Model-based Fault Diagnosis in Dynamic Systems Using Identification Techniques

Model-based Fault Diagnosis in Dynamic Systems Using Identification Techniques

von Silvio Simani Cesare Fantuzzi Ron J. Patton

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Beschreibung

Safety in industrial process and production plants is a concern of rising importance, especially if people would be endangered by a catastrophic system failure. On the other hand, because the control devices which are now exploited to improve the overall performance of industrial processes include both sophisticated digital system design techniques and complex hardware (input-output sensors, actuators, components and processing units), there is an increased probability of failure. As a direct consequence of this, control systems must include automatic supervision of closed-loop operation to detect and isolate malfunctions as early as possible.

One of the most promising methods for solving this problem is the "analytical redundancy" approach, in which residual signals are obtained. The basic idea consists of using an accurate model of the system to mimic the real process behaviour. If a fault occurs, the residual signal, i.e., the difference between real system and model behaviours, can be used to diagnose and isolate the malfunction.

This book focuses on model identification oriented to the analytical approach of fault diagnosis and identification. The problem is treated in all its aspects covering:

• choice of model structure;

• parameter identification;

• residual generation;

• fault diagnosis and isolation.

Sample case studies are used to demonstrate the application of these techniques.

Model-based Fault Diagnosis in Dynamic Systems Using Identification Techniques will be of interest to researchers in control and fault identification. Industrial control engineers interested in applying the latest methods in fault diagnosis will benefit from the practical examples and case studies.

 

Advances in Industrial Control aims to report and encourage the transfer of technology in control engineering. The rapid development of control technology has an impact onall areas of the control discipline. The series offers an opportunity for researchers to present an extended exposition of new work in all aspects of industrial control.


Safety in industrial process and production plants is a concern of rising importance but because the control devices which are now exploited to improve the performance of industrial processes include both sophisticated digital system design techniques and complex hardware, there is a higher probability of failure. Control systems must include automatic supervision of closed-loop operation to detect and isolate malfunctions quickly. A promising method for solving this problem is "analytical redundancy", in which residual signals are obtained and an accurate model of the system mimics real process behaviour. If a fault occurs, the residual signal is used to diagnose and isolate the malfunction. This book focuses on model identification oriented to the analytical approach of fault diagnosis and identification covering: choice of model structure; parameter identification; residual generation; and fault diagnosis and isolation. Sample case studies are used to demonstrate the application of these techniques.
The reader will gain practical knowledge of how to apply the latest models and techniques in fault diagnosis to industrial systems Application of the subject matter will reduce the risk of failure in safety-critical systems Includes supplementary material: sn.pub/extras
This book will sell because many industries use safety-critical systems or are dependent on their process being accurate and reliable for reasons of quality. This book presents the latest research from a well-known group in fault identification and diagnosis that will enable those industries to overcome faults more quickly and cheaply.

Autor*in

Silvio Simani

Themen in »Model-based Fault Diagnosis in Dynamic Systems Using Identification Techniques«

Control Control Applications Control Engineering Dynamical Systems Fault Diagnosis Gas Turbines Identification Power Plants Residual Generation Sensor safety quality control, reliability, safety and risk

Stimmen zu »Model-based Fault Diagnosis in Dynamic Systems Using Identification Techniques«

Details

ISBN: 9781447138297
Verlag: Springer London
Erscheinung: 11.11.2013

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