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Thermal Energy Storage, 2ed : Systems and Applications

Thermal Energy Storage, 2ed : Systems and Applications

          
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About the Book

This new edition of Thermal Energy Storage Systems offers the up-to-date coverage needed to address recent R&D, including much of the authors' own work, which furthers more energy efficient and sustainable technological methods and solutions. New material also covers analysis, design and performance improvement as well as life-cycle costing and assessment. The authors address real-life technical and operational problems, enabling the reader to gain an understanding of the fundamental principles and the practical applications of thermal energy storage technology.


About the Author

Ibrahim Dincer is Professor of Mechanical Engineering within the Faculty of Engineering and Applied Science at UOIT. His research interests include energy and energy conversion management, heat and mass transfer, thermodynamics, drying, refrigeration and thermal energy storage. He has received numerous awards for excellence in research and is the Editor-in-Chief of the Wiley International Journal of Energy Research Mark Rosen is Professor and founding Dean of the Faculty of Engineering and Applied Science at the University of Ontario Institute of Technology in Oshawa, Canada. With over 40 research grants and contracts and 350 technical publications, Dr. Rosen is an active teacher and researcher in thermodynamics and energy conversion. He was President of the Canadian Society for Mechanical Engineering from 2002 to 2004.



Table of Contents:
About the Authors Preface Acknowledgements 1 General Introductory Aspects for Thermal Engineering 1.1 Introduction 1.2 Systems of Units 1.3 Fundamental Properties and Quantities 1.4 General Aspects of Thermodynamics 1.5 General Aspects of Fluid Flow 1.6 General Aspects of Heat Transfer 1.7 Concluding Remarks 2 Energy Storage Systems 2.1 Introduction 2.2 Energy Demand 2.3 Energy Storage 2.4 Energy Storage Methods 2.5 Hydrogen for Energy Storage 2.6 Comparison of ES Technologies 2.7 Concluding Remarks 3 Thermal Energy Storage (TES) Methods 3.1 Introduction 3.2 Thermal Energy 3.3 Thermal Energy Storage 3.4 Solar Energy and TES 3.5 TES Methods 3.6 Sensible TES 3.7 Latent TES 3.8 Cold Thermal Energy Storage (CTES) 3.9 Seasonal TES 3.10 Concluding Remarks 4 Thermal Energy Storage and Environmental Impact 4.1 Introduction 4.2 Energy and the Environment 4.3 Major Environmental Problems 4.4 Environmental Impact and TES Systems and Applications 4.5 Potential Solutions to Environmental Problems 4.6 Sustainable Development 4.7 Illustrative Examples and Case Studies 4.8 Concluding Remarks 5 Thermal Energy Storage and Energy Savings 5.1 Introduction 5.2 TES and Energy Savings 5.3 Additional Energy Savings Considerations for TES 5.4 Energy Conservation with TES: Planning and Implementation 5.5 Some Limitations on Increased Efficiency 5.6 Energy Savings for Cold TES 5.7 Concluding Remarks 6 Energy and Exergy Analyses of Thermal Energy Storage Systems 6.1 Introduction 6.2 Theory: Energy and Exergy Analyses 6.3 Thermodynamic Considerations in TES Evaluation 6.4 Exergy Evaluation of a Closed TES System 6.5 Appropriate Efficiency Measures for Closed TES Systems 6.6 Importance of Temperature in Performance Evaluations for Sensible TES Systems 6.7 Exergy Analysis of Aquifer TES Systems 6.8 Exergy Analysis of Thermally Stratified Storages 6.9 Energy and Exergy Analyses of Cold TES Systems 6.10 Exergy-Based Optimal Discharge Periods for Closed TES Systems 6.11 Exergy Analysis of Solar Ponds 6.12 Concluding Remarks 7 Numerical Modeling and Simulation of Thermal Energy Storage Systems 7.1 Introduction 7.2 Approaches and Methods 7.3 Selected Applications 7.4 Numerical Modeling, Simulation, and Analysis of Sensible TES Systems 7.6 Numerical Modeling, Simulation, and Analysis of Latent TES Systems 7.8 Illustrative Application for a Complex System: Numerical Assessment of Encapsulated Ice TES with Variable Heat Transfer Coefficients 7.9 Concluding Remarks 8 Thermal Energy Storage Case Studies 8.1 Introduction 8.2 Ice CTES Case Studies 8.3 Ice-Slurry CTES Case Studies 8.4 Chilled Water CTES Case Studies 8.5 PCM-Based CTES Case Studies 8.6 PCM-Based Latent TES for Heating Case Studies 8.7 Sensible TES Case Studies 8.8 Other Case Studies 8.9 Concluding Remarks 9 Recent Advances in TES Methods, Technologies and Applications 9.1 Introduction 9.2 Recent TES Investigations 9.3 Developments in TES Types and Performance 9.4 Micro- and Macro-Level Advances in TES Systems and Applications 9.5 Micro-Level Advances in TES Systems 9.6 Macro-Level Advances in TES Systems and Applications 9.7 Performance Enhancement Techniques 9.8 Innovative Applications of TES Systems 9.9 Advanced Applications of Exergy Methods 9.10 Illustrative Examples 9.11 Future Outlook for TES Appendix A Conversion Factors Appendix B Thermophysical Properties Appendix C Glossary Index


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Product Details
  • ISBN-13: 9788126556069
  • Publisher: Wiley
  • Binding: Hardback
  • Language: English
  • ISBN-10: 8126556064
  • Publisher Date: 2015
  • Edition: 2
  • No of Pages: 620

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