Executive Summary |
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1 | (4) |
Summary |
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5 | (18) |
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1 Induced Seismicity And Energy Technologies |
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23 | (14) |
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Introduction to Induced Seismicity and Study Background |
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23 | (4) |
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Earthquakes and Their Measurement |
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27 | (5) |
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Energy Technologies and Induced Seismicity |
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32 | (2) |
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Historical Induced Seismicity Related to Energy Activities |
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34 | (1) |
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35 | (1) |
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35 | (2) |
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2 Types And Causes Of Induced Seismicity |
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37 | (22) |
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37 | (1) |
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Factors Affecting Initiation and Magnitude of a Seismic Event |
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37 | (9) |
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Seismicity Induced by Fluid Injection |
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46 | (5) |
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Seismicity Induced by Fluid Withdrawal |
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51 | (5) |
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56 | (1) |
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57 | (2) |
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3 Energy Technologies: How They Work And Their Induced Seismicity Potential |
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59 | (58) |
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59 | (16) |
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Conventional Oil and Gas Production Including Enhanced Oil Recovery |
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75 | (8) |
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Unconventional Oil and Gas Production Including Shale Reservoirs |
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83 | (5) |
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Injection Wells Used for the Disposal of Water Associated with Energy Extraction |
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88 | (6) |
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Carbon Capture and Storage |
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94 | (9) |
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103 | (8) |
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111 | (6) |
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4 Governmental Roles And Responsibilities Related To Underground Injection And Induced Seismicity |
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117 | (22) |
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118 | (11) |
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129 | (6) |
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Existing Regulatory Framework for Fluid Withdrawal |
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135 | (1) |
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136 | (1) |
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136 | (3) |
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5 Paths Forward To Understanding And Managing Induced Seismicity In Energy Technology Development |
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139 | (12) |
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Hazards and Risks Associated with Induced Seismicity |
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139 | (7) |
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Quantifying Hazard and Risk |
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146 | (4) |
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150 | (1) |
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6 Steps Toward A "Best Practices" Protocol |
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151 | (14) |
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The Importance of Considering the Adoption of Best Practices |
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151 | (1) |
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Existing Induced Seismicity Checklists and Protocols |
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152 | (5) |
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The Use of a Traffic Light Control System |
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157 | (5) |
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Mitigating the Effects of Induced Seismicity on Public and Private Facilities |
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162 | (2) |
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164 | (1) |
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7 Addressing Induced Seismicity: Findings, Conclusions, Research, And Proposed Actions |
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165 | (16) |
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Types and Causes of Induced Seismicity |
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166 | (2) |
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Energy Technologies: How They Work |
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168 | (6) |
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Oversight, Monitoring, and Coordination of Underground Injection Activities for Mitigating Induced Seismicity |
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174 | (1) |
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Hazards and Risk Assessment |
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175 | (1) |
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176 | (5) |
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A Committee and Staff Biographies |
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181 | (6) |
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187 | (8) |
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C Observations of Induced Seismicity |
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195 | (12) |
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D Letters between Senator Bingaman and Secretary Chu |
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207 | (4) |
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E Earthquake Size Estimates and Negative Earthquake Magnitudes |
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211 | (6) |
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F The Failure of the Baldwin Hills Reservoir Dam |
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217 | (2) |
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G Seismic Event Due to Fluid Injection or Withdrawal |
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219 | (6) |
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H Pore Pressure Induced by Fluid Injection |
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225 | (4) |
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I Hydraulic Fracture Microseismic Monitoring |
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229 | (4) |
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J Hydraulic Fracturing in Eola Field, Garvin County, Oklahoma, and Potential Link to Induced Seismicity |
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233 | (6) |
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K Paradox Valley Unit Saltwater Injection Project |
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239 | (4) |
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L Estimated Injected Fluid Volumes |
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243 | (4) |
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M Additional Acknowledgments |
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247 | |