Preface |
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xvii | |
Acknowledgments |
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xix | |
About the Author |
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xxi | |
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Chapter 1 Introductory Concepts |
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1 | (1) |
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1 | (10) |
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1 | (2) |
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3 | (2) |
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1.1.3 Energy and Power Evolution versus Time |
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5 | (2) |
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1.1.4 Energy and Power Units |
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7 | (4) |
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1.2 Energy Form Classification and Transformation |
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11 | (4) |
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1.2.1 Energy Form Classification |
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11 | (2) |
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1.2.2 Energy Form Transformations |
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13 | (2) |
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15 | (8) |
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1.3.1 Nonrenewable Energy Sources |
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15 | (1) |
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15 | (1) |
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16 | (1) |
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16 | (1) |
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16 | (1) |
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1.3.2 Available Reserves of Nonrenewable Energy Sources |
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16 | (4) |
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1.3.3 Renewable Energy Sources |
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20 | (1) |
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1.3.4 Power Density of Energy Sources |
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21 | (1) |
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1.3.4.1 Upper Heat Capacity |
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22 | (1) |
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1.3.4.2 Lower Heat Capacity |
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22 | (1) |
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1.4 Energy Efficiency and Transformation |
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23 | (5) |
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23 | (1) |
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1.4.2 Energy Transformation |
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23 | (3) |
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1.4.3 Average and Instant Efficiency |
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26 | (2) |
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1.5 Efficiency of Transformers Connected in Series and in Parallel |
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28 | (3) |
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1.5.1 Energy Transformers Connected in Series |
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29 | (1) |
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1.5.2 Energy Transformers Connected in Parallel |
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30 | (1) |
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1.6 Conventional and Hybrid Power Plants |
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31 | (4) |
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1.6.1 Conventional Energy Systems |
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31 | (2) |
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1.6.2 "Hybrid" Energy Systems |
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33 | (2) |
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35 | (1) |
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Chapter 1 Introductory Concepts |
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35 | (1) |
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Chapter 2 Conventional Power Plants for Electricity Production |
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36 | (1) |
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Chapter 3 Electricity Production Hybrid Power Plants |
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37 | (1) |
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Chapter 4 Hybrid Plants for Thermal Energy Production |
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37 | (1) |
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Chapter 5 Cogeneration Power Plants |
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38 | (1) |
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38 | (1) |
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Chapter 7 Energy as a Consumptive Product |
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38 | (3) |
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39 | (2) |
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Chapter 2 Conventional Power Plants for Electricity Production |
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41 | (1) |
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41 | (1) |
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2.1.1 Layout of an Electrical System |
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41 | (1) |
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2.1.1.1 Electricity Production Power Plants |
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41 | (1) |
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2.1.1.2 Electricity Grids |
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42 | (1) |
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2.1.1.3 Voltage Sub-Stations |
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43 | (1) |
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2.1.2 Interconnected and Non-Interconnected Electrical Systems |
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44 | (2) |
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2.1.3 Electrical System Security |
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46 | (3) |
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49 | (2) |
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2.1.5 RES Power Plants and Dynamic Security of Electrical Systems |
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51 | (2) |
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2.1.6 Electrical System Power Demand |
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53 | (3) |
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56 | (27) |
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57 | (1) |
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2.2.1.1 Steam Preparation Stage |
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58 | (1) |
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2.2.1.2 Steam Expansion Stage |
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59 | (1) |
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2.2.1.3 Steam Restoration Stage |
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59 | (1) |
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60 | (2) |
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62 | (1) |
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63 | (2) |
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2.2.5 Technical Minimum, Nominal Power, and Efficiency of Thermal Generators |
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65 | (3) |
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68 | (6) |
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2.2.7 Nonguaranteed Power Production Units |
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74 | (2) |
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2.2.8 Power Production Generators Dispatch Order |
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76 | (2) |
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78 | (1) |
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2.2.8.2 Diesel Generators |
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78 | (1) |
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78 | (1) |
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79 | (1) |
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2.2.8.5 Nonguaranteed Power Production Units |
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79 | (1) |
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79 | (2) |
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2.2.9 Spinning Reserve Policy |
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81 | (2) |
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2.3 Power Production Synthesis Examples |
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83 | (7) |
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2.4 Hourly Calculation of an Electrical System |
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90 | (7) |
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2.4.1 Operation with Wind Park Penetration |
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90 | (4) |
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2.4.2 Operation without Wind Parks |
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94 | (3) |
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2.5 Computational Simulation of the Annual Operation of an Electrical System |
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97 | (1) |
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2.6 Computational Simulation of the Annual Operation of Crete's Autonomous Electrical System |
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98 | (10) |
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98 | (1) |
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2.6.2 Crete Thermal Power Plants |
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99 | (1) |
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2.6.3 Crete Nonguaranteed Power Production Plants |
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100 | (1) |
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101 | (1) |
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2.6.5 Crete Simulation Results |
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102 | (1) |
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2.6.5.1 Power Production Synthesis Graphs |
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102 | (3) |
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2.6.5.2 Wind and PV Power Penetration |
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105 | (1) |
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2.6.5.3 Electricity Production, Generator Efficiency, Fuels Consumption, and Costs |
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106 | (2) |
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108 | (1) |
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2.7 Computational Simulation of the Annual Operation of Praslin's Autonomous Electrical System |
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108 | (9) |
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2.7.1 Praslin-La Digue Power Demand |
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108 | (1) |
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2.7.2 Praslin-La Digue Thermal Power Plant |
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109 | (2) |
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2.7.3 Praslin-La Digue Nonguaranteed Power Production Plants |
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111 | (1) |
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2.7.4 Praslin-La Digue Fuels |
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111 | (1) |
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2.7.5 Praslin-La Digue Simulation Results |
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111 | (1) |
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2.7.5.1 Power Production Synthesis Graphs |
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111 | (2) |
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2.7.5.2 Electricity Production, Generator Efficiency, Fuels Consumption, and Costs |
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113 | (1) |
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114 | (1) |
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115 | (2) |
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Chapter 3 Electricity Production Hybrid Power Plants |
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117 | (1) |
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3.1 The Concept of the Hybrid Power Plant |
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117 | (2) |
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3.2 Classification of Electricity Production Hybrid Power Plants |
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119 | (1) |
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3.3 Technologies for Large-Size Hybrid Power Plants |
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120 | (13) |
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121 | (2) |
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123 | (1) |
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3.3.2.1 Compressed-Air Energy Storage Systems |
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123 | (4) |
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3.3.2.2 Pumped Hydro Storage Systems |
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127 | (6) |
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3.4 Technologies for Small-Size Hybrid Power Plants |
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133 | (17) |
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3.4.1 Renewable Energy Source Units |
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133 | (3) |
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136 | (1) |
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3.4.2.1 Electrochemical Batteries |
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136 | (7) |
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143 | (6) |
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3.4.3 Storage Plant Selection for Small-Size Hybrid Power Plants |
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149 | (1) |
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3.5 Operation Algorithms of Large-Size Hybrid Power Plants |
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150 | (24) |
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3.5.1 Hybrid Power Plants for 100% RES Penetration |
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151 | (1) |
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3.5.1.1 PHS Systems as Storage Unit |
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151 | (7) |
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3.5.1.2 CAES Systems as Storage Unit |
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158 | (13) |
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3.5.2 Hybrid Power Plants for Power Peak Shaving |
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171 | (3) |
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3.6 Operation Algorithms of Small-Size Hybrid Power Plants |
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174 | (13) |
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3.6.1 Hybrid Power Plants of Small Size |
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174 | (6) |
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3.6.2 Simulation of an Electrolysis Unit and a Fuel Cell Operation |
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180 | (3) |
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3.6.3 Hybrid Power Plants of Very Small Size |
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183 | (4) |
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3.7 Optimization Criteria for the Dimensioning of Hybrid Power Plants |
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187 | (8) |
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3.7.1 Optimization of Hybrid Power Plants Based on Energy Criteria |
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187 | (1) |
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3.7.2 Dimensioning Optimization of Hybrid Power Plants Based on Economic Criteria |
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188 | (1) |
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3.7.2.1 Optimization of the Investment's Economic Indices |
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188 | (3) |
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3.7.2.2 Minimization of Setup and Operation Costs |
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191 | (4) |
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3.8 Hybrid Power Plant Case Studies |
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195 | (40) |
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3.8.1 A Hybrid Power Plant for the Faroe Islands |
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196 | (1) |
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3.8.1.1 The Aim of the Dimensioning |
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196 | (1) |
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3.8.1.2 Independent Parameters of the Dimensioning |
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196 | (1) |
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196 | (1) |
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3.8.1.4 Building the Power Demand Annual Time Series |
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196 | (3) |
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3.8.1.5 Available RES Potential |
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199 | (2) |
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3.8.1.6 The Proposed Hybrid Power Plant |
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201 | (1) |
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202 | (4) |
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3.8.2 A Hybrid Power Plant in the Island of Sifnos, Greece |
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206 | (1) |
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3.8.2.1 The Aim of the Dimensioning |
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206 | (1) |
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3.8.2.2 Independent Parameters of the Dimensioning |
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207 | (1) |
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207 | (4) |
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3.8.2.4 Dimensioning Procedure |
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211 | (1) |
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212 | (3) |
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3.8.3 A Hybrid Power Plant for the Island of Kastelorizo, Greece |
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215 | (1) |
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3.8.3.1 Objective of the Case Study |
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215 | (1) |
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3.8.3.2 Hybrid Power Plant Components |
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215 | (1) |
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3.8.3.3 Dimensioning Parameters and Required Data |
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216 | (2) |
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3.8.3.4 Dimensioning of the Hybrid Power Plant Supported with CAES |
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218 | (2) |
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3.8.3.5 Dimensioning of the Hybrid Power Plant Supported with Electrochemical Storage |
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220 | (2) |
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3.8.4 A Hybrid Power Plant for a Remote Cottage |
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222 | (2) |
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3.8.4.1 The Estimation of the Power Demand |
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224 | (2) |
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3.8.4.2 The Estimation of the Available RES Potential |
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226 | (1) |
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3.8.4.3 Power Production Calculation from the RES Units |
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226 | (1) |
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3.8.4.4 Power Production from the Thermal Generators and Fuel Consumption |
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227 | (1) |
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3.8.4.5 Calculation of the LCC Dimensioning Optimization |
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228 | (3) |
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231 | (4) |
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Chapter 4 Hybrid Plants for Thermal Energy Production |
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235 | (1) |
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235 | (1) |
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236 | (1) |
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4.2.1 Uncovered Solar Collectors |
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236 | (2) |
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4.2.2 Flat-Plate Solar Collectors |
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238 | (3) |
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4.2.3 Vacuum Tube Solar Collectors |
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241 | (1) |
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4.2.4 Concentrating Solar Collectors |
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242 | (2) |
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4.2.4.1 Line-Focus Concentrating Solar Collectors |
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244 | (1) |
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4.2.4.2 Spherical Concentrating Collectors |
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245 | (1) |
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4.2.4.3 Compound Parabolic Collectors |
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245 | (1) |
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4.2.5 Photovoltaic Thermal Hybrid Solar Collectors |
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246 | (5) |
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4.3 Energy Analysis of a Flat-Plate Solar Collector |
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251 | (30) |
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4.3.1 Heat Removal Factor FR |
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254 | (2) |
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4.3.2 Thermal Transmittance Factor U |
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256 | (2) |
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4.3.3 Transmittance-Absorptance Product (x a) |
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258 | (3) |
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4.3.4 Efficiency of Flat-Plate Solar Collector |
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261 | (1) |
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4.3.4.1 Incidence Angle Modifier |
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262 | (2) |
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4.3.4.2 Collector's Time Constant |
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264 | (1) |
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4.3.5 Calculation Procedure of the Thermal Power Production from Flat-Plate Collectors |
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265 | (8) |
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4.3.6 Operation Features of Flat-Plate Solar Collectors |
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273 | (3) |
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4.3.7 Optimum Installation Angle |
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276 | (4) |
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4.3.8 Application for Water-Based Photovoltaic Hybrid Thermal Collectors |
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280 | (1) |
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4.4 Energy Analysis for a Concentrating Solar Collector |
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281 | (16) |
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4.4.1 Total Thermal Transmittance Factor U, for the Heat Losses from the Receiver |
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281 | (5) |
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4.4.2 Thermal Power Production from Concentrating Solar Collectors |
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286 | (3) |
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4.4.3 Solar Radiation Absorptance from Concentrating Solar Collectors |
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289 | (1) |
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4.4.4 Solar Radiation Absorbed from Compound Parabolic Collectors |
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290 | (7) |
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4.5 Thermal Energy Storage |
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297 | (7) |
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4.5.1 Thermal Energy Storage in Water Tanks |
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298 | (3) |
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4.5.2 Stratification Thermal Storage in Water Tanks |
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301 | (3) |
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4.6 Operation Simulation of Thermal Hybrid Power Plants |
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304 | (14) |
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4.6.1 Heat Exchanger Factor |
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307 | (2) |
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4.6.2 Heat Losses from the Hydraulic Network |
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309 | (3) |
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4.6.3 Connection of Solar Collectors In-Parallel and In-Series |
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312 | (3) |
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4.6.4 Thermal Energy Storage in Multiple Storage Tanks |
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315 | (3) |
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4.7 Solar Thermal Power Plants |
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318 | (30) |
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4.7.1 Solar Thermal Power Plant Alternative Technologies |
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321 | (1) |
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4.7.1.1 Parabolic Trough Collector Systems |
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322 | (2) |
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4.7.1.2 Linear Fresnel Reflector Systems |
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324 | (3) |
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4.7.1.3 Power Tower/Central Receiver Systems |
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327 | (3) |
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4.7.1.4 Parabolic Disk Systems |
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330 | (2) |
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4.7.2 Thermal Energy Storage Systems |
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332 | (2) |
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4.7.2.1 Sensible Heat Storage Systems |
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334 | (6) |
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4.7.2.2 Latent Heat Storage Systems |
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340 | (3) |
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4.7.3.3 Thermochemical Heat Storage Systems |
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343 | (1) |
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4.7.4.4 Thermal Energy Storage Integration |
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344 | (4) |
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4.8 Characteristic Case Studies |
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348 | (17) |
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4.8.1 Thermal Hybrid Plant for Swimming Pool Heating |
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348 | (8) |
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4.8.2 Thermal Hybrid Plant for School Building Heating |
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356 | (5) |
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361 | (4) |
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Chapter 5 Cogeneration Power Plants |
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365 | (1) |
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365 | (3) |
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5.2 Basic Categories of Cogeneration Systems |
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368 | (5) |
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5.2.1 Centralized Cogeneration Systems |
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369 | (1) |
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5.2.2 Decentralized Cogeneration Systems |
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370 | (3) |
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5.3 Technologies of Cogeneration Systems |
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373 | (14) |
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5.3.1 Steam Turbine Centralized Cogeneration Systems |
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374 | (1) |
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5.3.1.1 Cogeneration System with a Back-Pressure Steam Turbine |
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375 | (1) |
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5.3.1.2 Cogeneration System with an Extraction Steam Turbine |
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376 | (1) |
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5.3.1.3 Cogeneration System with a Bottoming Cycle Steam Turbine |
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377 | (1) |
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5.3.2 Gas Turbine Cogeneration Systems |
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377 | (1) |
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5.3.2.1 Cogeneration Systems with Open-Cycle Gas Turbines |
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377 | (1) |
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5.3.2.2 Cogeneration Systems with Closed-Cycle Gas Turbines |
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378 | (1) |
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5.3.3 Cogeneration Systems with Reciprocating Engines |
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379 | (1) |
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5.3.3.1 Cogeneration Systems with Otto Gas Engines |
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380 | (1) |
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5.3.3.2 Cogeneration Systems with Diesel Gas Engines |
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380 | (1) |
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5.3.3.3 Cogeneration Systems with Diesel Engines for Electricity Production |
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381 | (1) |
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5.3.4 Cogeneration Systems with Combined Cycles |
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381 | (1) |
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5.3.5 Compact Cogeneration Systems of Small Size |
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382 | (1) |
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5.3.6 Other Types of Cogeneration Systems |
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383 | (1) |
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5.3.6.1 Bottoming Cycles with Organic Fluids |
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383 | (1) |
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384 | (1) |
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5.3.6.3 Cogeneration Systems with Stirling Engines |
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385 | (2) |
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5.4 Efficiency Factors of Cogeneration Systems |
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387 | (2) |
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5.5 Fundamental Thermodynamic Concepts |
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389 | (6) |
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389 | (1) |
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5.5.2 The Concept of Exergy |
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390 | (1) |
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5.5.3 The Energetic and Exergetic Analysis of a Thermal Process |
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391 | (2) |
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5.5.4 Analytical Expressions of Exergy Quantities |
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393 | (1) |
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5.5.5 Base Enthalpy and Chemical Exergy of Species |
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394 | (1) |
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5.6 Energetic and Exergetic Analysis of Cogeneration Processes |
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395 | (5) |
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5.7 District Heating and Cooling |
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400 | (6) |
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5.7.1 Fundamental Layout of a District Heating System |
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401 | (1) |
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402 | (1) |
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5.7.1.2 Expansion Systems |
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402 | (1) |
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402 | (1) |
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403 | (1) |
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5.7.2 Fundamental Layout of a District Cooling System |
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403 | (3) |
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5.8 District Heating Examples |
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406 | (4) |
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5.8.1 Biomass District Heating in Giissing, Austria |
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407 | (1) |
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5.8.2 Geothermal District Heating in Milan, Italy |
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408 | (2) |
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5.9 A CHP Plant Case Study |
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410 | (14) |
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5.9.1 Location and Climate Conditions |
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411 | (1) |
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5.9.2 Calculation of the Algae Ponds' Heating Loads |
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412 | (2) |
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5.9.3 The CHP Plant Layout |
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414 | (1) |
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5.9.4 The CHP Plant Operation Algorithm |
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415 | (4) |
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419 | (5) |
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5.10 Solar Cooling Systems |
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424 | (17) |
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5.10.1 Trigeneration and Solar Cooling |
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424 | (1) |
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5.10.2 Fundamental Principles of Absorption Cooling |
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425 | (3) |
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428 | (6) |
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5.10.4 A Solar Cooling Case Study |
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434 | (4) |
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438 | (3) |
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441 | (1) |
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441 | (3) |
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6.2 The Concept of Smart Grids |
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444 | (2) |
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6.2.1 Functionalities of Smart Grids |
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446 | (3) |
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6.2.2 Evolution of Smart Grids |
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449 | (1) |
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6.2.3 Smart Grid Conceptual Model |
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450 | (3) |
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453 | (1) |
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454 | (1) |
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6.2.3.3 Service Providers Domain |
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455 | (2) |
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6.2.3.4 Operations Domain |
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457 | (1) |
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6.2.3.5 Generation Including Distributed Energy Resources Domain |
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458 | (1) |
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6.2.3.6 Transmission Domain |
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459 | (2) |
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6.2.3.7 Distribution Domain |
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461 | (1) |
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6.3 Demand Side Management |
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462 | (10) |
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6.3.1 Consumers' Classification |
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463 | (1) |
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6.3.2 Demand Side Management Strategies |
|
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464 | (1) |
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6.3.2.1 Load Shifting (Peak Load Shaving) |
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464 | (2) |
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6.3.2.2 Dispersed Power Production |
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466 | (1) |
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466 | (1) |
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6.3.2.4 Energy Efficiency 8 |
|
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467 | (1) |
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6.3.3 Demand Side Management Programs |
|
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468 | (2) |
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6.3.4 Demand Side Management Benefits |
|
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470 | (1) |
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6.3.4.1 Bill Savings for Customers Involved in DSM Programs |
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|
470 | (1) |
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6.3.4.2 Bill Savings for Customers Not Involved in DSM Programs |
|
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471 | (1) |
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6.3.4.3 Reliability Benefits for All Customers |
|
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471 | (1) |
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6.3.4.4 Market Performance |
|
|
471 | (1) |
|
6.3.4.5 Improved System Security and Performance |
|
|
471 | (1) |
|
|
472 | (1) |
|
6.4 Enabling Technologies for Smart Grids |
|
|
472 | (8) |
|
6.4.1 Control Devices and DSM |
|
|
474 | (1) |
|
6.4.2 Control Devices and DER |
|
|
475 | (1) |
|
|
476 | (1) |
|
|
476 | (2) |
|
6.4.4 Communication Systems |
|
|
478 | (2) |
|
|
480 | (2) |
|
|
482 | (1) |
|
6.7 Smart Grid Implementation Examples |
|
|
483 | (8) |
|
6.7.1 The Smart Grid of Azienda Elettrica di Massagno |
|
|
483 | (1) |
|
6.7.2 Duke Energy Carolinas Grid Modernization Projects |
|
|
484 | (1) |
|
6.7.3 The Smart Micro-Grid on the Island of Tilos |
|
|
485 | (2) |
|
|
487 | (4) |
|
Chapter 7 Energy as a Consumptive Product |
|
|
491 | (1) |
|
|
491 | (2) |
|
|
493 | (1) |
|
7.2.1 Brief Historical Background |
|
|
493 | (2) |
|
7.2.2 Effects of Oil Prices on International and National Macro Economies |
|
|
495 | (1) |
|
7.2.3 Oil and Development of Local and National Economies |
|
|
496 | (3) |
|
|
499 | (1) |
|
|
499 | (1) |
|
|
499 | (1) |
|
|
500 | (1) |
|
|
500 | (1) |
|
|
501 | (1) |
|
|
501 | (2) |
|
|
503 | (1) |
|
7.2.3.9 United Arab Emirates |
|
|
503 | (2) |
|
7.3 Nuclear Energy and Development |
|
|
505 | (4) |
|
7.4 Renewable Energy Sources and Development |
|
|
509 | (15) |
|
7.4.1 Development of RES Electricity Production Projects in Greece |
|
|
510 | (3) |
|
7.4.2 Rational Development of RES Projects and Maximization of Common Benefits |
|
|
513 | (1) |
|
7.4.2.1 A Clear, Objective, and Effective Legislation Framework |
|
|
514 | (1) |
|
7.4.2.2 Public Rates for Local Municipalities |
|
|
514 | (1) |
|
7.4.2.3 Support of Local Entrepreneurship for the Development of RES Projects |
|
|
515 | (1) |
|
7.4.2.4 Protection of the Environment, Respect to Existing Domestic and Commercial Activities |
|
|
515 | (1) |
|
7.4.2.5 Cultivation of a Positive Common Attitude |
|
|
516 | (1) |
|
7.4.3 Examples from RES and Development |
|
|
516 | (1) |
|
7.4.3.1 Hydroelectricity in Norway |
|
|
516 | (2) |
|
7.4.3.2 Wind Power in Denmark |
|
|
518 | (1) |
|
7.4.3.3 RES Penetration in Iceland |
|
|
518 | (2) |
|
7.4.3.4 Wind Power in Germany |
|
|
520 | (1) |
|
7.4.3.5 Wind Power in United Kingdom |
|
|
520 | (1) |
|
7.4.3.6 The Energy Cooperative of Sifnos Island, Greece |
|
|
521 | (1) |
|
7.4.3.7 Faroe Islands, 100% Energy Autonomy by 2030 |
|
|
521 | (3) |
|
7.5 Environmental Impacts from Thermal Power Plants |
|
|
524 | (6) |
|
7.5.1 Landscape Degradation |
|
|
526 | (1) |
|
7.5.2 Leaks Through the Drilling and Transportation Processes |
|
|
527 | (2) |
|
7.5.3 Impacts on Water Resources |
|
|
529 | (1) |
|
|
529 | (1) |
|
7.6 Impacts from the Use of Nuclear Power |
|
|
530 | (3) |
|
|
531 | (1) |
|
7.6.2 Risk of a Nuclear Accident |
|
|
531 | (1) |
|
7.6.2.1 The Nuclear Accident in Chernobyl |
|
|
532 | (1) |
|
7.7 Impacts from Wind Parks and Photovoltaic Stations |
|
|
533 | (10) |
|
|
534 | (1) |
|
|
535 | (3) |
|
|
538 | (2) |
|
|
540 | (1) |
|
|
541 | (1) |
|
7.7.6 Electromagnetic Interference |
|
|
541 | (2) |
|
7.8 Impacts from Hydroelectric Power Plants |
|
|
543 | (5) |
|
|
543 | (1) |
|
|
544 | (1) |
|
|
545 | (1) |
|
|
546 | (1) |
|
7.8.5 Biotope: Flora and Vegetation |
|
|
546 | (1) |
|
|
547 | (1) |
|
|
548 | (1) |
|
7.9 Impacts from Geothermal Power Plants |
|
|
548 | (7) |
|
7.9.1 Impacts on Air Quality |
|
|
549 | (1) |
|
7.9.2 Impacts on Water Resources |
|
|
549 | (2) |
|
|
551 | (1) |
|
|
552 | (1) |
|
|
552 | (1) |
|
7.9.6 Biological Resources |
|
|
552 | (1) |
|
|
552 | (3) |
Index |
|
555 | |