Electric Machines: Modeling, Condition Monitoring, and Fault Diagnosis
Autor Hamid A. Toliyat, Subhasis Nandi, Seungdeog Choi, Homayoun Meshgin-Kelken Limba Engleză Hardback – 30 oct 2012
Combines Theoretical Analysis and Practical Application
Written by experts in electrical engineering, the book approaches the fault diagnosis of electrical motors through the process of theoretical analysis and practical application. It begins by explaining how to analyze the fundamentals of machine failure using the winding functions method, the magnetic equivalent circuit method, and finite element analysis. It then examines how to implement fault diagnosis using techniques such as the motor current signature analysis (MCSA) method, frequency domain method, model-based techniques, and a pattern recognition scheme. Emphasizing the MCSA implementation method, the authors discuss robust signal processing techniques and the implementation of reference-frame-theory-based fault diagnosis for hybrid vehicles.
Fault Modeling, Diagnosis, and Implementation in One Volume
Based on years of research and development at the Electrical Machines & Power Electronics (EMPE) Laboratory at Texas A&M University, this book describes practical analysis and implementation strategies that readers can use in their work. It brings together, in one volume, the fundamentals of motor fault conditions, advanced fault modeling theory, fault diagnosis techniques, and low-cost DSP-based fault diagnosis implementation strategies.
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CRC Press – 30 oct 2012 | 1093.50 lei 43-57 zile |
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Specificații
ISBN-13: 9780849370274
ISBN-10: 0849370272
Pagini: 272
Ilustrații: 161 b/w images and 21 tables
Dimensiuni: 156 x 234 x 20 mm
Greutate: 0.54 kg
Ediția:New.
Editura: CRC Press
Colecția CRC Press
ISBN-10: 0849370272
Pagini: 272
Ilustrații: 161 b/w images and 21 tables
Dimensiuni: 156 x 234 x 20 mm
Greutate: 0.54 kg
Ediția:New.
Editura: CRC Press
Colecția CRC Press
Public țintă
ProfessionalCuprins
Introduction. Faults in Induction and Synchronous Motors. Modeling of Electric Machines Using Winding and Modified Winding Function Approaches. Modeling of Electric Machines Using Magnetic Equivalent Circuit Method. Analysis of Faulty Induction Motors Using Finite Element Method. Fault Diagnosis of Electric Machines Using Techniques Based on Frequency Domain. Fault Diagnosis of Electric Machines Using Model-Based Techniques. Application of Pattern Recognition to Fault Diagnosis. Implementation of Motor Current Signature Analysis Fault Diagnosis Based on Digital Signal Processors. Implementation of Fault Diagnosis in Hybrid Vehicles Based on Reference Frame Theory. Robust Signal Processing Techniques for the Implementation of Motor Current Signature Analysis Diagnosis Based on Digital Signal Processors. Index.
Notă biografică
Prof. Toliyat is currently a Raytheon Company endowed professor of electrical and computer engineering at Texas A&M University. He has received several awards, including the prestigious Cyrill Veinott Award in Electromechanical Energy Conversion from the IEEE Power Engineering Society (2004), the Patent and Innovation Award from Texas A&M University System Office of Technology Commercialization (2007), the TEES Faculty Fellow Award (2006), the Texas A&M Select Young Investigator Award (1999), and the Space Act Award from NASA (1999). He has also received four prize paper awards from the IEEE. Prof. Toliyat has published more than 370 technical papers (including more than 110 in IEEE Transactions) and has 12 issued and pending U.S. patents.
Descriere
In response to the multidisciplinary nature of fault diagnosis and condition monitoring, this text describes different types of faults in electric machines and the techniques employed in their detection. Representing an advance in the condition monitoring and diagnostics literature, this book concentrates on state-of-the-art noninvasive methods that can be utilized on running machines without interfering with their processes. The authors also explain how the availability of inexpensive yet powerful processing powers using digital signal processors makes it possible to seamlessly integrate the task of condition monitoring and fault diagnosis with machine control algorithms.