| Foreword |
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ix | |
| Authors' Preface |
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xi | |
| About the authors |
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xv | |
| Acknowledgements |
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xvii | |
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1 | (6) |
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2 Electricity demand and energy sources |
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7 | (18) |
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7 | (4) |
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2.2 Regional electricity markets, source mix and forecasts until 2030 |
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11 | (14) |
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11 | (2) |
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13 | (1) |
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14 | (2) |
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16 | (3) |
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19 | (1) |
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20 | (5) |
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3 Carbon dioxide emissions |
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25 | (14) |
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25 | (5) |
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30 | (1) |
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31 | (1) |
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32 | (1) |
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33 | (1) |
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34 | (1) |
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35 | (4) |
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39 | (50) |
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41 | (4) |
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4.1.1 Geological and tectonic setting |
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41 | (2) |
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4.1.2 Geothermal manifestation |
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43 | (2) |
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45 | (5) |
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4.2.1 Geology and tectonic setting |
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45 | (1) |
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4.2.2 Geothermal manifestation |
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46 | (4) |
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50 | (5) |
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4.3.1 Geology and tectonic setting |
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50 | (5) |
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55 | (7) |
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4.4.1 Geological and tectonic settings |
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55 | (1) |
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4.4.2 Geothermal manifestations |
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56 | (1) |
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56 | (2) |
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58 | (1) |
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59 | (3) |
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62 | (4) |
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4.5.1 Geology and tectonic setting |
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62 | (2) |
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4.5.2 Geothermal manifestation |
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64 | (2) |
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66 | (10) |
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4.6.1 Geology and tectonic setting |
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66 | (7) |
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73 | (3) |
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4.7 Oxygen and hydrogen isotope behaviour of the thermal springs |
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76 | (4) |
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4.8 Tectonic evolution of the land masses around the Red Sea |
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80 | (2) |
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4.9 Subsurface structure across the Red Sea and continental margins |
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82 | (3) |
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4.10 Pathways of geothermal fluids in the Arabian shield |
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85 | (4) |
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5 Carbon dioxide mitigation strategy |
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89 | (4) |
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6 Geothermal exploration techniques |
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93 | (22) |
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93 | (9) |
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6.1.1 Characteristics of geothermal fields |
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94 | (1) |
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6.1.1.1 Subduction-related volcanic settings |
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94 | (1) |
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6.1.1.2 Continental collision zones |
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94 | (3) |
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6.1.1.3 Infra-continental rifts and ocean rift related volcanic settings |
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97 | (2) |
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6.1.1.4 Infra-continental rifts |
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99 | (3) |
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6.2 Geochemical exploration methods |
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102 | (7) |
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6.2.1 Classification of geothermal waters |
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102 | (2) |
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104 | (1) |
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104 | (1) |
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105 | (1) |
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6.2.1.4 Oxygen and hydrogen isotopes |
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106 | (3) |
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6.3 Geophysical exploration methods |
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109 | (6) |
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6.3.1 Electrical resistivity method |
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109 | (1) |
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110 | (1) |
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6.3.1.2 Magneto telluric method |
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111 | (4) |
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7 Power generation systems |
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115 | (12) |
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7.1 Types of generation systems |
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115 | (12) |
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7.1.1 Single and double flash power generation systems |
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117 | (3) |
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7.1.2 Binary cycle power plant |
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120 | (2) |
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122 | (5) |
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127 | (14) |
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8.1 The ground source heat pump |
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128 | (2) |
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8.2 Greenhouse cultivation |
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130 | (2) |
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132 | (3) |
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133 | (1) |
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8.3.2 Milk pasteurisation |
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134 | (1) |
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8.3.3 Spas and balneology |
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134 | (1) |
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8.4 Direct utilisation of geothermal sources by countries around the Red Sea |
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135 | (6) |
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135 | (1) |
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136 | (1) |
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137 | (1) |
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137 | (1) |
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137 | (1) |
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138 | (3) |
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9 Enhanced geothermal systems |
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141 | (44) |
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9.1 The concept and early stages of development |
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141 | (3) |
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9.1.1 Fenton Hill experiment |
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142 | (2) |
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9.2 Commercial and R&D EGS projects |
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144 | (7) |
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9.2.1 Rosemanowes HDR project |
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144 | (1) |
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145 | (2) |
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9.2.3 Hijiori HDR project |
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147 | (1) |
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148 | (1) |
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9.2.5 Cooper Basin, Australia |
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149 | (1) |
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9.2.6 Newberry Volcano EGS |
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150 | (1) |
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9.3 EGS prospects in the countries around the Red Sea |
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151 | (34) |
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9.3.1 EGS potential of Egypt |
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151 | (1) |
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9.3.1.1 Radiogenic granites |
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151 | (2) |
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153 | (2) |
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9.3.2 EGS potential of Saudi Arabia |
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155 | (1) |
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9.3.2.1 Radiogenic granites |
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156 | (12) |
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9.3.3 Regional stress over the Arabian Shield |
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168 | (1) |
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9.3.3.1 Deformation stresses |
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168 | (1) |
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9.3.3.2 Regional stresses |
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168 | (1) |
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9.3.4 Gulf of Aden and South Red Sea stress regime |
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169 | (5) |
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9.3.5 Stress regime around the Gulf of Suez |
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174 | (1) |
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9.3.6 Heat flow and subsurface temperature of the Arabian Shield |
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175 | (2) |
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9.3.7 Gamma ray logs in bore wells |
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177 | (8) |
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185 | (14) |
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10.1 Land and exploration cost |
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185 | (1) |
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186 | (2) |
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10.3 Power generation cost |
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188 | (3) |
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10.4 Low-enthalpy geothermal projects |
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191 | (1) |
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10.5 Economic advantage of geothermal for Red Sea countries |
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192 | (7) |
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192 | (2) |
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194 | (1) |
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195 | (1) |
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196 | (1) |
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197 | (2) |
| References |
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199 | (18) |
| Subject Index |
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217 | |