Electrical engineering Books
Springer Laser Interaction and Related Plasma Phenomena Volume 9 Laser Interaction Related Plasma Phenomena
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Springer EnergyEfficient Electric Motors and their Applications
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Springer Network Management and Control
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Springer Applications of Photonic Technology
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Springer Advances in XRay Analysis Volume 38 Proceedings of the 43rd Annual Conference Held in Steamboat Springs Colorado August 15 1994 Advances in XRay Analysis Vol 38
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Springer Reliability Evaluation of Power Systems
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Springer Coherence and Quantum Optics VII Proceedings of the Seventh Rochester Conference on Coherence and Quantum Optics held at the University of Rochester June 710 1995
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Springer Automated Highway Systems
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Springer Us Synchronization Techniques for Digital Receivers
Book SynopsisSynchronization is a critical function in digital communications; It is widely recognized that a fundamental understanding of digital synchronization can only be reached by providing the designer with a solid theoretical framework, or else he will not know where to adjust his methods when he attempts to apply them to new situations.Table of ContentsIntroduction. Principles, Methods and Performance Limits. Carrier Frequency Recovery with Linear Modulations. Carrier Frequency Recovery with CPM Modulations. Carrier Phase Recovery with Linear Modulations. Carrier Phase Recovery with CPM Modulations. Timing Recovery in Baseband Transmission. Timing Recovery with Linear Modulations. Timing Recovery with CPM Modulations. Index.
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Springer Directions for the Next Generation of MMIC Devices and Systems
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Springer Mobile Multimedia Communications
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Springer Applications of HighField and Short Wavelength
Book Synopsis1. High-Power Laser Sources.- The Production of Petawatt Laser Pulses.- Multiterawatt Ultraviolet Lasers.- 0.27 Terawatt Laser System at 1 kHz.- Determination of the Duration of UV Femtosecond Pulses.- 2. Ultrafast Coherent UV and X-Ray Sources.- Saturated Table-Top Soft X-Ray Lasers by Discharge Excitation.- Phase-Locking of High-Order Harmonics to the Fundamental Field.- Soft-X-Ray Harmonics in the Water Window.- Harmonic Generation in Presence of Ionization.- The Optimisation of Soft X-Ray Laser Output.- Spectroscopic Investigations of an Optical-Field-Ionized X-Ray Lasers with a Microcapillary Target.- Guided-Wave Optical Parametric Amplification in Gases: A Novel Phase-Matching Scheme for Ultrafast Pulses.- Increased Coherence Length in High-Order Harmonic Generation by a Self-Guided Beam.- 3. Novel Short Wavelength Sources.- Accelerator Based Source Development: Higher, Wider and Shorter.- A Debrisless Laser-Plasma Source for EUV and XUV Generation.- Attosecond Pulse Generation aTable of ContentsHigh-Power Laser Sources: Design and Performance of the Petawatt Laser; M.D. Perry, et al. Multiterawatt Ultraviolet Lasers; F.G. Omenetto, et al. Ultrafast Coherent UV and X-Ray Sources: Saturated Table-Top Soft X-Ray Lasers by Discharge Excitation; J.J. Rocca, et al. Phase-Locking of High-Order Harmonics to the Fundamental Field; M.B. Gaarde, et al. Novel Short Wavelength Sources: Accelerator Based Source Development: Higher, Wider and Shorter; E.D. Johnson. A Debrisless Laser-Plasma Source for EUV and XUV Generation; C.M. DePriest, et al. Ultrashort-Pulse Laser Plasma Interactions: Plasma Waveguide; Density Development and High Intensity Guiding; T.R. Clark, et al. Explosion of Atomic Clusters Heated by High Intensity, Femtosecond Laser Pulses; T. Ditmire, et al. Strong Field Interactions: Barrier-Suppression Ionization of Complex Atoms and Diatomic Molecules; V.P. Krainov. Relativistically Self-Guided Laser Wakefield Acceleration; R. Wagner, D. Umstadter. Applications of Short Wavelength Sources: Femtosecond Harmonic Laser Photoemission: Physics and Chemistry; R.A. Haight. 35 Additional Articles. Index.
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Springer Electromagnetic Signals Reflection Focusing Distortion and Their Practical Applications
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Springer Gaseous Dielectrics VIII
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Springer Nonuniform Sampling Theory and Practice Information Technology Transmission Processing and Storage
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Springer VibrationalRotational Excitations in Nonlinear Molecular Systems
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Springer Gaseous Dielectrics International Symposium Proceedings v 9
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Springer UltraWideband ShortPulse Electromagnetics 5
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Springer Coherence and Quantum Optics No8 Proceedings of the Eighth Rochester Conference on Coherence and Quantum Optics held at the University of Rochester June 1316 2001
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Springer Pulsed Power
Book SynopsisPulsed Systems: Design Principles.- Lumped Parameter Pulse Systems.- Pulse Generation Using Long Lines.- Physics of Pulsed Electrical Discharges.- The Vacuum Discharge.- The Pulsed Discharge in Gas.- Electrical Discharges in Liquids.- Properties of Coaxial Lines.- Solid-Insulated Coaxial Lines.- Liquid-Insulated Lines.- Vacuum Lines with Magnetic Self-Insulation.- Spark Gap Switches.- High-Pressure Gas Gaps.- Low-Pressure Spark Gaps.- Solid-State and Liquid Spark Gaps.- Generators with Plasma Closing Switches.- Generators with Gas-Discharge Switches.- Marx Generators.- Pulse Transformers.- Generators with Plasma Opening Switches.- Pulse Generators with Electrically Exploded Conductors.- Pulse Generators with Plasma Opening Switches.- Electron-Triggered Gas-Discharge Switches.- Pulse Power Generators with Solid-State Switches.- Semiconductor Closing Switches.- Semiconductor Opening Switches.- Pulse Power Generators in Circuits with Magnetic Elements.- Long Lines with Nonlinear ParameterTable of ContentsPreface Part 1: Pulsed Systems: Design Principles 1. Lumped Parameter Pulse Systems 2. Pulse Generation Using Long Lines Part 2: Physics of Pulsed Electrical Discharges 3. The Vacuum Discharge 4. The Pulsed Discharge in Gas 5. Electrical Discharges in Liquids Part 3: Properties of Coaxial Lines 6. Solid-Insulated Coaxial Lines 7. Liquid-Insulated Lines 8. Vacuum Lines with Magnetic Self-Insulation Part 4: Spark Gap Switches 9. High-Pressure Gas Gaps 10. Low-Pressure Spark Gaps 11. Solid-State and Liquid Spark Gaps Part 5: Generators with Plasma Closing Switches 12. Generators with Gas-Discharge Switches 13. Marx Generators 14. Pulse Transformers Part 6: Generators with Plasma Opening Switches 15. Pulse Generators with Electrically Exploded Conductors 16. Pulse Generators with Plasma Opening Switches 17. Electron-Triggered Gas-Discharge Switches Part 7: Pulse Power Generators with Solid-State Switches 18. Semiconductor Closing Switches 19 Semiconductor Opening Switches 20. Pulse Power Generators in Circuits with Magnetic Elements 21. Long Lines with Nonlinear Parameters Part 8: Electron Diodes and Electron-Diode-Based Accelerators 22. Large-Cross-Section Electron Beams 23. Annular Electron Beams 24. Dense Electron Beams and Their Focusing Part 9: High-Power Pulse Sources of Electromagnetic Radiation 25. High-Power X-Ray Pulses 26. High-Power Pulsed Gas Lasers 27. Generation of High-Power Pulsed Microwaves 28. Generation of Ultrawideband Radiation Pulses Index
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Bloomsbury USA 3pl Mastering Electrical Engineering
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Bloomsbury Publishing (UK) An Introduction to the Design of Smallscale Embedded Systems With Examples From PIC 80C51 And 68HC0508 Microcontrollers
Book SynopsisTIM WILMSHURST is Head of Electronic Systems at the University of Derby, where he teaches embedded system design. Before this he was Senior Design Engineer at the Engineering Department of Cambridge University. Here he led the work of the Electronics Development Group, and taught electronic system design. His designs have been applied in many areas of engineering research, as well as in the commercial world.Table of ContentsIntroduction.- Abbreviations.- Introducing Embedded Systems and the Microcontroller.- From Humble Beginnings: Towards the Minimum System.- Preliminary Programming.- Memory Matters.- Analog Affairs.- Strictly Serial.- Systematic Software.- Dealing with Time.- Interfacing to External Devices.- Supplying and Using Power, in a Power-Conscious World.- Dealing with Numbers.- Designing and Commissioning the System.- Answers to Selected Numerical Questions.- Appendix 1 Binary, Hexadecimal and BCD.- Appendix 2 The 16F84 Instruction Set.- Appendix 3 A Versatile Microcontroller Based Digital Panel Meter.- Appendix 4 Addressing Modes Address Decoding and the Memory Map.- Index.
£41.24
Springer Robot sensors and transducers Open University Press Robotics Series
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Springer Engineering ITEnabled Sustainable Electricity Services
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Springer Disability and Managed Care Problems and Opportunities at the End of the Century
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Springer Computation Engineering
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Springer Semiconductor Physical Electronics
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Springer Control Systems for Heating Ventilating and Air Conditioning
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Springer LithiumIon Batteries Science and Technologies
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Springer Analog Integrated Circuits for Communication
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Springer New York Linear System Theory Springer Texts in Electrical Engineering
Book SynopsisThis book is the result of our teaching over the years an undergraduate course on Linear Optimal Systems to applied mathematicians and a first-year graduate course on Linear Systems to engineers.Table of Contents1 Introduction.- 1.1 Science and Engineering.- 1.2 Physical Systems, Models, and Representations.- 1.3 Robustness.- 2 The System RepresentationR(•) = [A(•),B(•),C(•),D(•)].- 2.1 Fundamental Properties ofR(•).- 2.1.1 Definitions.- 2.1.2 Structure ofR(•).- 2.1.3 State Transition Matrix.- 2.1.4 State Transition Map and Response Map.- 2.1.5 Impulse Response Matrix.- 2.1.6 Adjoint Equations.- 2.1.7 Linear-Quadratic Optimization.- 2.2 Applications.- 2.2.1 Variational Equation.- 2.2.2 Control Correction Example.- 2.2.3 Optimization Example.- 2.2.4 Periodically Varying Differential Equations.- 2d The Discrete-Time System RepresentationRd(•) = [A(•),B(•),C(•),D(•)].- 2d.1 Fundamental Properties ofRd(•).- 2d.2 Application: Periodically Varying Recursion Equations.- 3 The System RepresentationR= [A,B,C,D], Part I.- 3.1 Preliminaries.- 3.2 General Properties ofR= [A,B,C,D].- 3.2.1 Definition.- 3.2.2 State Transition Matrix.- 3.2.3 The State Transition and Response Map of R.- 3.3 Properties of R when A has a Basis of Eigenvectors.- 3d The Discrete-Time System Representation Rd = [A,B,C,D].- 3d.1 Preliminaries.- 3d.2 General Properties of Rd.- 3d.3 Properties of Rd when A has a Basis of Eigenvectors.- 4 The System Representation R = [A,B,C,D], Part II.- 4.1 Preliminaries.- 4.2 Minimal Polynomial.- 4.3 Decomposition Theorem.- 4.4 The Decomposition of a Linear Map.- 4.5 Jordan Form.- 4.6 Function of a Matrix.- 4.7 Spectral Mapping Theorem.- 4.8 The Linear Map X ? AX+XB.- 5 General System Concepts.- 5.1 Dynamical Systems.- 5.2 Time-Invariant Dynamical Systems.- 5.3 Linear Dynamical Systems.- 5.4 Equivalence.- 6 Sampled Data Systems.- 6.1 Relation BetweenL- and z-Transforms.- 6.2 D/A Converter.- 6.3 A/D Converter.- 6.4 Sampled-Data System.- 6.5 Example.- 7 Stability.- 7.1 I/O Stability.- 7.2 State Related Stability Concepts and Applications.- 7.2.1 Stability of x = A(t)x.- 7.2.2 Bounded Trajectories and Regulation.- 7.2.3 Response to T-Periodic Inputs.- 7.2.4 Periodically Varying System with Periodic Input.- 7.2.5 Slightly Nonlinear Systems.- 7d Stability: The Discrete-Time Case.- 7d.1 I/O Stability.- 7d.2 State Related Stability Concepts.- 7d.2.1 Stability of x(k+1) = A(k)x(k).- 7d.2.2 Bounded Trajectories and Regulation.- 7d.2.3 Response to q-Periodic Inputs.- 8 Controllability and Observability.- 8.1 Controllability and Observability of Dynamical Systems.- 8.2 Controllability of the Pair (A(•),B(•)).- 8.2.1 Controllability of the Pair (A(•),B(•)).- 8.2.2 The Cost of Control.- 8.2.3 Stabilization by Linear State Feedback.- 8.3 Observability of the Pair (C(•),A(•)).- 8.4 Duality.- 8.5 Linear Time-Invariant Systems.- 8.5.1 Observability Properties of the Pair (C,A).- 8.5.2 Controllability of the Pair (A,B).- 8.6 Kalman Decomposition Theorem.- 8.7 Hidden Modes, Stabilizability, and Detectability.- 8.8 Balanced Representations.- 8.9 Robustness of Controllability.- 8d Controllability and Observability: The Discrete-Time Case.- 8d.1 Controllability and Observability of Dynamical Systems.- 8d.2 Reachability and Controllability of the Pair (A(•),B(•)).- 8d.2.1 Controllability of the Pair (A(•),B(•)).- 8d.2.2 The Cost of Control.- 8d.3 Observability of the Pair (C(•),A(•)).- 8d.4 Duality.- 8d.5 Linear Time-Invariant Systems.- 8d.5.1 Observability of the Pair (C,A).- 8d.5.2 Reachability and Controllability of the Pair(A,B).- 8d.6 Kalman Decomposition Theorem.- 8d.7 Stabilizability and Detectability.- 9 Realization Theory.- 9.1 Minimal Realizations.- 9.2 Controllable Canonical Form.- 10 Linear State Feedback and Estimation.- 10.1 Linear State Feedback.- 10.2 Linear Output Injection and State Estimation.- 10.3 State Feedback of the Estimated State.- 10.4 Infinite Horizon Linear Quadratic Optimization.- 10d.4 Infinite Horizon Linear Quadratic Optimization. The Discrete-Time Case.- 11 Unity Feedback Systems.- 11.1 The Feedback System ?c.- 11.1.1 State Space Analysis.- 11.1.2 Special Case:R1andR2have no Unstable Hidden Modes.- 11.1.3 The Discrete-Time Case.- 11.2 Nyquist Criterion.- 11.2.1 The Nyquist Criterion.- 11.2.2 Remarks on the Nyquist Criterion.- 11.2.3 Proof of Nyquist Criterion.- 11.2.4 The Discrete-Time Case.- 11.3 Robustness.- 11.3.1 Robustness With Respect to Plant Perturbations.- 11.3.2 Robustness With Respect to Exogenous Disturbances.- 11.3.3 Robust Regulation.- 11.3.4 Bandwidth-Robustness Tradeoff.- 11.3.5 The Discrete-Time Case.- 11.4 Kharitonov’s Theorem.- 11.4.1 Hurwitz Polynomials.- 11.4.2 Kharitonov’s Theorem.- 11.5 Robust Stability Under Structured Perturbations.- 11.5.1 General Robustness Theorem.- 11.5.2 Special Case: Affine Maps and Convexity.- 11.5.3 The Discrete Time Case.- 11.6 Stability Under Arbitrary Additive Plant Perturbations.- 11.7 Transmission Zeros.- 11.7.1 Single-Input Single-Output Case.- 11.7.2 Multi-Input Multi-Output Case: Assumptions and Definitions.- 11.7.3 Characterization of the Zeros.- 11.7.4 Application to Unity Feedback Systems.- Appendix A Linear Maps and Matrix Analysis.- A.1 Preliminary Notions.- A.2 Rings and Fields.- A.3 Linear Spaces.- A4. Linear Maps.- AS. Matrix Representation.- A.5.1 The Concept of Matrix Representation.- A.5.2 Matrix Representation and Change of Basis.- A.5.3 Range and Null Space: Rank and Nullity.- A.5.4 Echelon Forms of a Matrix.- A.6 Notmed Linear Spaces.- A.6.1 Norms.- A.6.2 Convergence.- A.6.3 Equivalent Norms.- A.6.4 The Lebesgue Spaces 1P and LP [Tay.1].- A.6.5 Continuous Linear Transformations.- A.7 The Adjoint of a Linear Map.- A.7.1 Inner Products.- A.7.2 Adjoints of Continuous Linear Maps.- A.7.3 Properties of the Adjoint.- A.7.4 The Finite Rank Operator Fundamental Lemma.- A.7.5 Singular Value Decomposition (SVD).- Appendix B Differential Equations.- BA Existence and Uniqueness of Solutions.- B.1.1 Assumptions.- B.1.2 Fundamental Theorem.- B.1.3 Construction of a Solution by Iteration.- B.1.4 The Bellman-Gronwall Inequality.- B.1.5 Uniqueness.- B.2 Initial Conditions and Parameter Perturbations.- B.3 Geometric Interpretation and Numerical Calculations.- Appendix C Laplace Transforms.- C.1 Definition of the Laplace Transform.- C.2 Properties of Laplace Transforms.- Appendix D the z-Transform.- D.1 Definition of the z-Transform.- D.2 Properties of the z-Transform.- References.- Abbreviations.- Mathematical Symbols.
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Springer ESD From A To Z
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Springer Microelectronics Packaging Handbook Subsystem Packaging Part III Technology Drivers
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Springer Numerical Computation of Electric and Magnetic Fields
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Springer Principles Of Infrared Technology A Practical Guide to the State of the Art
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Springer Optical Waveguide Theory Science Paperbacks 190
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Springer Electric Power Engineering 2Nd Edition
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Springer Direct Digital Control for Building HVAC Systems
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Springer Direct Digital Control Systems Application Commissioning
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Springer Protective Relays Their Theory and Practice Volume Two 002
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Springer Optical Waveguide Theory 190 Outline Studies in Biology
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Springer Power Electronics Semiconductor Switches
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Springer Electroceramics Materials Properties Applications Christianity and Society in the Modern
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Springer Fields Waves and Transmission Lines Problems In Electronics With Solutions
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Springer Electrons in Metals and Semiconductors 1 Physics and Its Applications
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Springer SolidState Microwave Generation 4 Microwave and RF Techniques and Applications
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Springer Ac and Dc Network Theory Physics and Its Applications 3
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Springer Soft Commutation
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