Finite Element Methods in Electrical Power Engineering

This book is designed to give the theoretical foundation needed by the new user of finite elements in electrical power engineering, and shows how the equipment designer can benefit from finite element analysis. It is divided into 3 parts; theory, modelling and application of the finite element method. The first section dealing with the theory of finite elements contains all the necessary mathematical formulations to develop the method but is written in a manner to give the reader a physical/engineering understanding behind the technique. The second section deals mainly with modelling aspects, such as the treatment of boundary conditions, end effects, non-linear material and permanent magnets etc. In all cases reference is made to their use in the solution of 'real' engineering problems. Finally, the third part is a collection of problems solved by finite elements including application to turbine generations, d.c. machines, switch reluctance drives, induction motors, transformers, bushing and overhead lines.

1100536348
Finite Element Methods in Electrical Power Engineering

This book is designed to give the theoretical foundation needed by the new user of finite elements in electrical power engineering, and shows how the equipment designer can benefit from finite element analysis. It is divided into 3 parts; theory, modelling and application of the finite element method. The first section dealing with the theory of finite elements contains all the necessary mathematical formulations to develop the method but is written in a manner to give the reader a physical/engineering understanding behind the technique. The second section deals mainly with modelling aspects, such as the treatment of boundary conditions, end effects, non-linear material and permanent magnets etc. In all cases reference is made to their use in the solution of 'real' engineering problems. Finally, the third part is a collection of problems solved by finite elements including application to turbine generations, d.c. machines, switch reluctance drives, induction motors, transformers, bushing and overhead lines.

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Finite Element Methods in Electrical Power Engineering

Finite Element Methods in Electrical Power Engineering

Finite Element Methods in Electrical Power Engineering

Finite Element Methods in Electrical Power Engineering

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Overview

This book is designed to give the theoretical foundation needed by the new user of finite elements in electrical power engineering, and shows how the equipment designer can benefit from finite element analysis. It is divided into 3 parts; theory, modelling and application of the finite element method. The first section dealing with the theory of finite elements contains all the necessary mathematical formulations to develop the method but is written in a manner to give the reader a physical/engineering understanding behind the technique. The second section deals mainly with modelling aspects, such as the treatment of boundary conditions, end effects, non-linear material and permanent magnets etc. In all cases reference is made to their use in the solution of 'real' engineering problems. Finally, the third part is a collection of problems solved by finite elements including application to turbine generations, d.c. machines, switch reluctance drives, induction motors, transformers, bushing and overhead lines.


Product Details

ISBN-13: 9780198565048
Publisher: Oxford University Press, USA
Publication date: 04/28/2000
Series: Monographs in Electrical and Electronic Engineering Series , #46
Pages: 312
Product dimensions: 6.10(w) x 9.30(h) x 0.90(d)

Table of Contents

List of symbols
1. Introduction
Part I: Relevant Theory
2. Electromagnetics
3. Approaches to three-dimensional problems
4. Formulation of electromagnetic equations in finite element terms
5. Treatment of non-linear materials
6. Derived quantities
Part II: Principles of Modelling
7. Data generation (or pre-processing)
8. Post-processing
9. Selection of hardware
10. Extensions for steady-state machine problems
11. Time stepping for steady-state and transient problems
12. The importance of engineering judgement
Part III: Case Studies
13. Steady-state performance of large turbine generators: open circuit and load excitation and reactances
14. Turbine-generator end-leakage fields and losses
15. Turbine-generator transient parameters by simulated frequency response testing
16. Simulation of turbine-generator short circuit and application to parameter prediction
17. Performance calculations on permanent-magnet d.c. motor
18. Performance prediction for switched reluctance motors (two- and three-dimensional)
19. Induction-motor steady-state performance prediction
20. Transformer fields and reactances
21. Electric-field analysis in power transformers
22. Electric-stress calculations in bushings and surge arresters
23. Future developments
Appendix 1: Definition of some vector operators used
Appendix 2: Verification of the energy functional for scalar magnetic potential using Euler's equation
Bibliography
Index

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