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Book Description

The global warming phenomenon as a significant sustainability issue is gaining worldwide support for development of renewable energy technologies. The term “polygeneration” is referred to as “an energy supply system, which delivers more than one form of energy to the final user.”  For example, electricity, cooling and desalination can be delivered from a polygeneration process. The polygeneration process in a hybrid solar thermal power plant can deliver electricity with less impact on the environment compared to a conventional fossil fuel-based power generating system. It is also THE next generation energy production technique with the potential to overcome the undesirable intermittence of renewable energy systems.

In this study, the polygeneration process simultaneous production of power, vapor absorption refrigeration (VAR) cooling and multi-effect humidification and dehumidification (MEHD) desalination system from different heat sources in hybrid solar-biomass (HSB) system with higher energy efficiencies (energy and exergy), primary energy savings (PES) and payback period are investigated, focusing on several aspects associated with hybrid solar-biomass power generation installations, such as wide availability of biomass resources and solar direct normal irradiance (DNI), and other technologies.  Thermodynamic evaluation (energy and exergy) of HSB power has also been investigated, along with the VAR cooling system, the modelling, simulation, optimization and cost analysis of the polygeneration hybrid solar biomass system, all accompanied by multiple case studies and examples for practical applications.

This volume provides the researcher, student and engineer with the intellectual tool needed for understanding new ideas in this rapidly emerging field. The book is also intended to serve as a general source and reference book for the professional (consultant, designer, contractor etc.) who is working in the field of solar thermal, biomass, power plant, polygeneration, cooling and process heat.  It is a must-have for anyone working in this field.

Table of Contents

  1. Cover
  2. Title page
  3. Copyright page
  4. Foreword
  5. Preface
  6. Chapter 1: Introduction
    1. 1.1 Global Scenario on Renewable Energy
    2. 1.2 Indian Scenario on Renewable Energy
    3. Exercise
    4. References
  7. Chapter 2: State-of-the-Art Concentrated Solar Thermal Technologies for End Use Applications
    1. 2.1 Solar Thermal Technologies for Low Grade Heat Applications
    2. 2.2 Solar Cooking
    3. 2.3 Solar Thermal Cooling
    4. 2.4 Desalination System
    5. 2.5 Industrial Process Heat applications
    6. 2.6 Solar Thermal Technologies for Power Generation
    7. 2.7 Cooling with Process Heat in Cogeneration Process for Industrial Applications
    8. Exercise
    9. References
  8. Chapter 3: Resource Assessment of Solar and Biomass for Hybrid Thermal Power Plant
    1. 3.1 Apparent Solar Time
    2. 3.2 Solar Angles
    3. 3.3 Solar Resources (DNI) In India
    4. 3.4 Biomass Resources in India
    5. 3.5 Analysis of Solar DNI And Biomass Resources for Hybrid Power Plants
    6. Exercise
    7. References
  9. Chapter 4: Solar Thermal Power Plant
    1. 4.1 A Case Study of 1 MWe Solar Thermal Power Plant
    2. 4.2 Major Components
    3. 4.3 Performance of the Plant
    4. Exercise
    5. References
  10. Chapter 5: Modeling and Simulation of Hybrid Solar and Biomass Thermal Power Plant
    1. 5.1 Modeling Approach of a Hybrid Solar-Biomass Thermal Power Plant
    2. 5.2 Thermodynamic Evaluation
    3. 5.3 Analysis of Hybrid Solar and Biomass Thermal Power Plant
    4. Exercise
    5. References
  11. Chapter 6: Modeling, Simulation, Optimization and Cost Analysis of a Polygeneration Hybrid Solar Biomass System
    1. 6.1 Modeling Approach of Polygeneration Process in an HSB Thermal Power Plant
    2. 6.2 Thermodynamic Evaluation
    3. 6.3 Primary Energy Savings on the Polygeneration Process in an HSB Thermal Power Plant
    4. 6.4 Optimization
    5. 6.5 Cost Analysis
    6. 6.6 Analysis Of Polygeneration Process in an HSB Thermal Power Plant for Power, Cooling, and Desalination
    7. 6.7 Optimization of the Polygeneration System
    8. 6.8 Cost Analysis of a Polygeneration System
    9. Exercise
    10. References
  12. Appendix 1
    1. Nomenclature
    2. Greek
    3. Subscripts
    4. Acronyms
  13. Appendix 2
    1. EES Software Coding
  14. Appendix 3
    1. Multiple Choice Questions (MCQ) with Answers
    2. Answers
  15. About the Author
  16. Index
  17. End User License Agreement
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