<p><span>Advanced Power Generation Systems: Thermal Sources evaluates advances made in heat-to-power technologies for conventional combustion heat and nuclear heat, along with natural sources of geothermal, solar, and waste heat generated from the use of different sources. These advances will render
Advanced power generation systems
β Scribed by IΜbrahim DincΜ§er; Calin Zamfirescu
- Publisher
- Elsevier Science
- Year
- 2014
- Tongue
- English
- Leaves
- 643
- Edition
- 1
- Category
- Library
No coin nor oath required. For personal study only.
β¦ Synopsis
Advanced Power Generation Systems examines the full range of advanced multiple output thermodynamic cycles that can enable more sustainable and efficient power production from traditional methods, as well as driving the significant gains available from renewable sources. These advanced cycles can harness the by-products of one power generation effort, such as electricity production, to simultaneously create additional energy outputs, such as heat or refrigeration. Gas turbine-based, and industrial waste heat recovery-based combined, cogeneration, and trigeneration cycles are considered in depth, along with Syngas combustion engines, hybrid SOFC/gas turbine engines, and other thermodynamically efficient and environmentally conscious generation technologies. The uses of solar power, biomass, hydrogen, and fuel cells in advanced power generation are considered, within both hybrid and dedicated systems.
The detailed energy and exergy analysis of each type of system provided by globally recognized author Dr. Ibrahim Dincer will inform effective and efficient design choices, while emphasizing the pivotal role of new methodologies and models for performance assessment of existing systems. This unique resource gathers information from thermodynamics, fluid mechanics, heat transfer, and energy system design to provide a single-source guide to solving practical power engineering problems.
- The only complete source of info on the whole array of multiple output thermodynamic cycles, covering all the design options for environmentally-conscious combined production of electric power, heat, and refrigeration
- Offers crucial instruction on realizing more efficiency in traditional power generation systems, and on implementing renewable technologies, including solar, hydrogen, fuel cells, and biomass
- Each cycle description clarified through schematic diagrams, and linked to sustainable development scenarios through detailed energy, exergy, and efficiency analyses
- Case studies and examples demonstrate how novel systems and performance assessment methods function in practice
β¦ Table of Contents
Content:
Front Matter, Pages i-ii
Copyright, Page iv
Acknowledgments, Page ix
Preface, Pages xi-xii
Chapter 1 - Fundamentals of Thermodynamics, Pages 1-53
Chapter 2 - Energy, Environment, and Sustainable Development, Pages 55-93
Chapter 3 - Fossil Fuels and Alternatives, Pages 95-141
Chapter 4 - Hydrogen and Fuel Cell Systems, Pages 143-198
Chapter 5 - Conventional Power Generating Systems, Pages 199-310
Chapter 6 - Nuclear Power Generation, Pages 311-368
Chapter 7 - Renewable-Energy-Based Power Generating Systems, Pages 369-453
Chapter 8 - Integrated Power Generating Systems, Pages 455-516
Chapter 9 - Multigeneration Systems, Pages 517-573
Chapter 10 - Novel Power Generating Systems, Pages 575-596
Appendix A - Conversion Factors, Page 597
Appendix B - Thermophysical Properties, Pages 599-615
Index, Pages 617-644
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