Mechanical energy storage for renewable and sustainable energy resources. (2020)
- Record Type:
- Book
- Title:
- Mechanical energy storage for renewable and sustainable energy resources. (2020)
- Main Title:
- Mechanical energy storage for renewable and sustainable energy resources
- Further Information:
- Note: By Abdul Hai Alami.
- Other Names:
- Alami, Abdul Hai
- Contents:
- Intro -- Foreword -- Preface -- Contents -- About the Author -- List of Figures -- List of Tables -- List of Equations -- 1 Introduction to Mechanical Energy Storage -- 1.1 Introduction to Mechanical Energy Storage -- 1.2 Need for Storage Technology -- 1.3 Storage for Renewable Energy Resources -- 1.4 World Energy Resources and Consumption -- 1.5 Classification of Storage Systems -- 1.6 Available Storage Technologies -- 1.7 Mechanical Storage Systems -- 1.7.1 Units and Conversions -- References -- 2 General Concepts -- 2.1 Introduction -- 2.2 Basic Energy Conversion Concepts 2.2.1 Thermodynamics -- 2.2.1.1 Internal Energy -- 2.2.1.2 Enthalpy -- 2.2.1.3 Entropy -- 2.2.1.4 Gibbs Rule and the Free Work Principle -- 2.2.2 Dynamics of Rigid Bodies -- 2.2.3 Heat Transfer -- 2.2.3.1 Sensible Heat -- 2.2.3.2 Latent Heat -- 2.2.4 Phase Diagrams -- 2.2.5 Compressible Flow -- 2.2.6 Electrical Generators -- 2.2.7 Ragone Plots -- References -- 3 Energy Storage in Elastic Components -- 3.1 Energy Storage in Elastic Components -- 3.2 Linear Springs -- 3.3 Torsional Springs -- 3.4 Hyperelastic Material -- 3.5 Energy Storage Applications -- References -- 4 Thermal Storage 4.1 Thermal Storage -- 4.2 Latent Energy Storage -- 4.2.1 Available Materials for Latent Heat Storage: Inorganic Materials -- 4.2.2 Organic Phase-Change Materials -- 4.3 Experimental Latent Heat Trial -- 4.4 Thermal Storage for Solar Thermal Power Plants -- 4.5 Thermal Storage for Compressed-Air Energy Storage (CAES)Intro -- Foreword -- Preface -- Contents -- About the Author -- List of Figures -- List of Tables -- List of Equations -- 1 Introduction to Mechanical Energy Storage -- 1.1 Introduction to Mechanical Energy Storage -- 1.2 Need for Storage Technology -- 1.3 Storage for Renewable Energy Resources -- 1.4 World Energy Resources and Consumption -- 1.5 Classification of Storage Systems -- 1.6 Available Storage Technologies -- 1.7 Mechanical Storage Systems -- 1.7.1 Units and Conversions -- References -- 2 General Concepts -- 2.1 Introduction -- 2.2 Basic Energy Conversion Concepts 2.2.1 Thermodynamics -- 2.2.1.1 Internal Energy -- 2.2.1.2 Enthalpy -- 2.2.1.3 Entropy -- 2.2.1.4 Gibbs Rule and the Free Work Principle -- 2.2.2 Dynamics of Rigid Bodies -- 2.2.3 Heat Transfer -- 2.2.3.1 Sensible Heat -- 2.2.3.2 Latent Heat -- 2.2.4 Phase Diagrams -- 2.2.5 Compressible Flow -- 2.2.6 Electrical Generators -- 2.2.7 Ragone Plots -- References -- 3 Energy Storage in Elastic Components -- 3.1 Energy Storage in Elastic Components -- 3.2 Linear Springs -- 3.3 Torsional Springs -- 3.4 Hyperelastic Material -- 3.5 Energy Storage Applications -- References -- 4 Thermal Storage 4.1 Thermal Storage -- 4.2 Latent Energy Storage -- 4.2.1 Available Materials for Latent Heat Storage: Inorganic Materials -- 4.2.2 Organic Phase-Change Materials -- 4.3 Experimental Latent Heat Trial -- 4.4 Thermal Storage for Solar Thermal Power Plants -- 4.5 Thermal Storage for Compressed-Air Energy Storage (CAES) Systems -- References -- 5 Flywheel Storage Systems -- 5.1 Flywheel Storage Systems -- 5.2 Flywheel Design -- 5.3 Components of Modern Flywheel Systems (Case Study of the AFS TRINITY) -- 5.3.1 Motor/Generator -- 5.3.2 Bearings -- 5.3.3 Composite Rotor -- 5.3.4 Control System 5.3.5 Power Electronics -- 5.3.6 Ancillary Systems -- 5.3.7 Switchgear -- 5.3.8 Flywheel System Testing -- 5.3.9 System Performance -- 5.3.10 Operational Considerations -- 5.3.11 M3 Trinity System Technical Specifications -- 5.3.12 Potential Market for M3 Flywheels -- 5.4 Flywheels and Regenerative Braking Systems -- 5.4.1 Principal of Operation -- 5.5 Superconductors and Flywheels -- 5.6 Flywheels for Energy Storage and Attitude Control of the International Space Station -- References -- 6 Pumped Hydro Storage -- 6.1 Pumped Hydro Storage -- 6.2 Governing Equations 6.3 Technical Consideration Pumped Hydro Storage Systems -- 6.4 Pumped Hydro Storage System Efficiency -- 6.4.1 Major Losses for Pumped Hydro Storage Systems -- 6.4.2 Response Time for Pumped Storage -- 6.5 Operational Aspects of Pumped Hydro Storage Systems -- 6.6 Technical Model for a Pumped Hydro Storage Facility [4] -- 6.6.1 Pumping Mode -- 6.6.2 Generation Mode -- 6.7 Case Study: Pumped Hydro Storage in the Hoover Dam (USA) [6] -- References -- 7 Compressed-Air Energy Storage Systems -- 7.1 Compressed-Air Energy Storage Systems -- 7.2 Large-Scale CAES Systems … (more)
- Publisher Details:
- Cham : Springer
- Publication Date:
- 2020
- Extent:
- 1 online resource
- Subjects:
- 621.31/26
Energy storage
Direct energy conversion
Direct energy conversion
Energy storage
Electronic books
Electronic books - Languages:
- English
- ISBNs:
- 9783030337889
- Related ISBNs:
- 303033788X
3030337871
9783030337872 - Notes:
- Note: Includes bibliographical references.
- Access Rights:
- Legal Deposit; Only available on premises controlled by the deposit library and to one user at any one time; The Legal Deposit Libraries (Non-Print Works) Regulations (UK).
- Access Usage:
- Restricted: Printing from this resource is governed by The Legal Deposit Libraries (Non-Print Works) Regulations (UK) and UK copyright law currently in force.
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- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library HMNTS - ELD.DS.480088
- Ingest File:
- 03_031.xml