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Frequency Analysis of Vibration Energy Harvesting Systems.

Author: Xu Wang
Publisher: Saint Louis : Elsevier Science, 2016.
Edition/Format:   eBook : Document : EnglishView all editions and formats
Database:WorldCat
Summary:
Frequency Analysis of Vibration Energy Harvesting Systems aims to present unique frequency response methods for analyzing and improving vibration energy harvesting systems. Vibration energy is usually converted into heat energy, which is transferred to and wasted in the environment. If this vibration energy can be converted into useful electric energy, both the performance and energy efficiency of machines,  Read more...
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Genre/Form: Electronic books
Additional Physical Format: Print version:
Wang, Xu.
Frequency Analysis of Vibration Energy Harvesting Systems.
Saint Louis : Elsevier Science, ©2016
Material Type: Document, Internet resource
Document Type: Internet Resource, Computer File
All Authors / Contributors: Xu Wang
ISBN: 9780128025581 0128025581
OCLC Number: 956276622
Notes: 5.2 DIMENSIONLESS COMPARISON OF SDOF PIEZOELECTRIC AND ELECTROMAGNETIC VIBRATION ENERGY HARVESTERS CONNECTED WITH A SINGLE LOAD ...
Description: 1 online resource (328 pages)
Contents: Front Cover; Frequency Analysis of Vibration Energy Harvesting Systems; Frequency Analysis of Vibration Energy Harvesting Systems ; Copyright; Contents; List of Figures; List of Tables; About the Author; Preface; Acknowledgments; 1 --
Analysis of a Single Degree of Freedom Spring-Mass-Dashpot System Using Transfer Function, Integration, State S ... ; 1.1 INTRODUCTION; 1.2 LAPLACE TRANSFORM AND TRANSFER FUNCTION ANALYSIS METHOD; 1.3 TIME DOMAIN INTEGRATION METHOD; 1.4 STATE SPACE METHOD; 1.5 FREQUENCY RESPONSE METHOD. 1.6 AN EXAMPLE OF THE TIME DOMAIN INTEGRATION SIMULATION AND FREQUENCY RESPONSE ANALYSIS METHODS USING MATLAB SIMULINK PROGRAM ... 1.6.1 TIME DOMAIN INTEGRATION SIMULATION METHOD USING THE MATLAB SIMULINK PROGRAM CODES; 1.6.2 THE FREQUENCY RESPONSE ANALYSIS METHOD USING A MATLAB CODE; NOMENCLATURE; REFERENCES; 2 --
Analysis of a Single Degree of Freedom Piezoelectric Vibration Energy Harvester System Using the Transfer Funct ... ; 2.1 INTRODUCTION; 2.2 ANALYSIS AND SIMULATION OF AN SINGLE DEGREE OF FREEDOM PIEZOELECTRIC VIBRATION ENERGY HARVESTER CONNECTED TO A SINGLE LOAD ... 2.3 LAPLACE TRANSFORM AND TRANSFER FUNCTION ANALYSIS METHOD2.4 TIME DOMAIN INTEGRATION METHOD; 2.5 STATE SPACE METHOD; 2.6 FREQUENCY RESPONSE ANALYSIS METHOD; 2.7 DIMENSIONLESS FREQUENCY RESPONSE ANALYSIS AND HARVESTING PERFORMANCE OPTIMIZATION; NOMENCLATURE; REFERENCES; 3 --
Analysis of Piezoelectric Vibration Energy Harvester System With Different Interface Circuits ; 3.1 INTRODUCTION; 3.2 STANDARD INTERFACE CIRCUIT; 3.3 SYNCHRONOUS ELECTRIC CHARGE EXTRACTION CIRCUIT; 3.4 PARALLEL SYNCHRONOUS SWITCH HARVESTING ON INDUCTOR CIRCUIT; 3.5 SERIES SYNCHRONOUS SWITCH HARVESTING ON INDUCTOR CIRCUIT. 3.6 ANALYSIS AND COMPARISON3.7 CASE STUDY; 3.8 SUMMARY; NOMENCLATURE; REFERENCES; 4 --
Analysis of Electromagnetic Vibration Energy Harvesters With Different Interface Circuits ; 4.1 INTRODUCTION; 4.2 DIMENSIONLESS ANALYSIS OF SINGLE DEGREE OF FREEDOM ELECTROMAGNETIC VIBRATION ENERGY HARVESTER CONNECTED WITH A SINGLE LOAD ... ; 4.3 LAPLACE TRANSFORM AND TRANSFER FUNCTION METHOD; 4.4 TIME DOMAIN INTEGRATION METHOD; 4.5 STATE SPACE METHOD; 4.6 FREQUENCY RESPONSE METHOD; 4.7 DIMENSIONLESS FREQUENCY RESPONSE ANALYSIS AND HARVESTING PERFORMANCE OPTIMIZATION. 4.8 DIMENSIONLESS ANALYSIS OF ELECTROMAGNETIC VIBRATION ENERGY HARVESTERS CONNECTED WITH ENERGY EXTRACTION AND STORAGE CIRCUITS4.8.1 STANDARD INTERFACE CIRCUIT; 4.8.2 SYNCHRONOUS ELECTRIC CHARGE EXTRACTION CIRCUIT; 4.8.3 PARALLEL SYNCHRONOUS SWITCH HARVESTING ON INDUCTOR CIRCUIT; 4.8.4 SERIES SYNCHRONOUS SWITCH HARVESTING ON INDUCTOR CIRCUIT; 4.9 ANALYSIS AND COMPARISON; 4.10 SUMMARY; NOMENCLATURE; REFERENCES; 5 --
Similarity and Duality of Electromagnetic and Piezoelectric Vibration Energy Harvesters ; 5.1 INTRODUCTION.

Abstract:

Frequency Analysis of Vibration Energy Harvesting Systems aims to present unique frequency response methods for analyzing and improving vibration energy harvesting systems. Vibration energy is usually converted into heat energy, which is transferred to and wasted in the environment. If this vibration energy can be converted into useful electric energy, both the performance and energy efficiency of machines, vehicles, and structures will be improved, and new opportunities will open up for powering electronic devices. To make use of ambient vibration energy, an effective analysis and design method is established and developed in this book. The book covers a wide range of frequency response analysis methods and includes details of a variety of real-life applications. MATLAB programming is introduced in the first two chapters and used in selected methods throughout the book. Using the methods studied, readers will learn how to analyze and optimize the efficiency of vibration energy systems. This book will be ideal for postgraduate students and researchers in mechanical and energy engineering. Covers a variety of frequency response analysis methods, including Fourier and Laplace transform, transfer function, integration and state space for piezoelectric and electromagnetic vibration energy harvesting analysis Provides coverage of new and traditional methods of analyzing and optimizing the power and efficiency of vibration energy harvesting systems, with MATLAB exercises provided throughout Demonstrates a wide range of real-life applications, such as ocean wave energy conversion, vehicle suspension vibration energy harvesting, and more.

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