Microseismic monitoring and geomechanical modelling of CO 2 storage in subsurface reservoirs:
Gespeichert in:
1. Verfasser: | |
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Format: | Abschlussarbeit Buch |
Sprache: | English |
Veröffentlicht: |
Berlin [u.a.]
Springer
2012
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Schriftenreihe: | Springer theses
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Schlagworte: | |
Online-Zugang: | Inhaltstext Inhaltsverzeichnis |
Beschreibung: | XVI, 183 S. Ill., graph. Darst. |
ISBN: | 9783642253874 |
Internformat
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Datensatz im Suchindex
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adam_text |
IMAGE 1
CONTENTS
1 INTRODUCTION 1
1.1 THE MOTIVATION FOR GEOLOGIC CO2 STORAGE 1
1.2 CCS OVERVIEW 3
1.2.1 STORAGE MECHANISMS 3
1.2.2 UNMINEABLE COAL SEAMS 5
1.2.3 DEPLETED HYDROCARBON RESERVOIRS 5
1.2.4 SALINE AQUIFERS 5
1.3 THESIS OVERVIEW 6
1.3.1 GEOMECHANICAL DEFORMATION 6
1.3.2 MICROSEISMIC MONITORING 7
1.3.3 THESIS OUTLINE 8
REFERENCES 9
2 THE WEYBURN CO2 INJECTION PROJECT 11
2.1 INTRODUCTION TO WEYBURN 11
2.2 WEYBURN GEOLOGICAL SETTING 12
2.2.1 HISTORY O F THE WEYBURN FIELD 13
2.3 MICROSEISMIC MONITORING AT WEYBURN 15
2.3.1 SYSTEM SETUP 15
2.4 EVENT TIMING AND LOCATIONS 17
2.4.1 PHASE IB 17
2.4.2 PHASE II 23
2.5 DISCUSSION 24
2.6 SUMMARY 25
REFERENCES 26
3 INVERTING SHEAR-WAVE SPLITTING MEASUREMENTS FOR FRACTURE PROPERTIES 27
3.1 INTRODUCTION 27
3.2 INVERSION METHOD 29
X I I I
HTTP://D-NB.INFO/1016259964
IMAGE 2
XIV CONTENTS
3.2.1 MODEL BUILDING USING ROCK PHYSICS 29
3.2.2 INVERSION FOR ROCK PHYSICS PROPERTIES 36
3.3 SYNTHETIC TESTING O F INVERSION METHOD 38
3.3.1 SENSITIVITY OF 5 AND Y 39
3.4 SWS MEASUREMENTS AT WEYBURN 43
3.4.1 METHOD 4 3
3.4.2 SPLITTING RESULTS FOR WEYBURN 45
3.4.3 PHASE IB 4 6
3.4.4 MODELLING TWO FRACTURE SETS 48
3.4.5 PHASE II 48
3.5 DISCUSSION 51
3.6 SUMMARY 51
REFERENCES 52
4 A COMPARISON O F MICROSEISMIC MONITORING OF FRACTURE STIMULATION DUE
TO WATER VERSUS CO2 INJECTION 55
4.1 INTRODUCTION 55
4.1.1 FIELD BACKGROUND AND DESCRIPTION 56
4.2 EVENT LOCATIONS 57
4.2.1 WATER INJECTION 58
4.2.2 CO2 INJECTION 59
4.3 EVENT MAGNITUDES 62
4.4 SHEAR WAVE SPLITTING 64
4.4.1 SPLITTING MEASUREMENTS 65
4.5 INITIAL S-WAVE POLARISATION 66
4.5.1 MODELLING THE EFFECTS OF OS ON SPLITTING ANALYSIS 69
4.5.2 0 S AND [P IN THE DATA 72
4.6 INTERPRETATION O F SHEAR WAVE SPLITTING RESULTS 73
4.6.1 SYNTHETIC TESTS 73
4.6.2 INTERPRETATION O F DATASETS 76
4.7 DISCUSSION 79
4.8 SUMMARY 80
REFERENCES 81
5 GEOMECHANICAL SIMULATION OF CO2 INJECTION 83
5.1 INTRODUCTION 83
5.2 EFFECTIVE STRESS AND STRESS PATH PARAMETERS 83
5.2.1 MEAN AND DIFFERENTIAL STRESS 84
5.2.2 MOHR CIRCLES 84
5.2.3 STRESS PATH PARAMETERS 85
5.3 NUMERICAL MODELLING 86
5.3.1 FLUID-FLOW SIMULATION 87
5.3.2 GEOMECHANICAL MODELLING 87
IMAGE 3
CONTENTS X V
5.3.3 COUPLING O F FLUID-FLOW AND GEOMECHANICAL
SIMULATIONS 89
5.3.4 WORKFLOW 9 0
5.3.5 SIMPLE REPRESENTATIVE MODELS 92
5.4 RESULTS : 9 4
5.4.1 STRESS ARCHING 9 6
5.4.2 FRACTURE POTENTIAL 99
5.4.3 SHALLOWER RESERVOIRS 101
5.5 SURFACE UPLIFT 101
5.6 SUMMARY 104
REFERENCES 104
6 GENERATING ANISOTROPIC SEISMIC MODELS BASED ON GEOMECHANICAL
SIMULATION 107
6.1 INTRODUCTION 107
6.2 STRESS-SENSITIVE ROCK PHYSICS MODELS 108
6.2.1 3RD-ORDER NONLINEAR ELASTICITY 108
6.3 A MICRO-STRUCTURAL MODEL FOR NONLINEAR ELASTICITY 110
6.3.1 THEORETICAL BACKGROUND I L L
6.3.2 INVERSION FOR SCALAR CRACKS 113
6.3.3 JOINT INVERSION FOR A AND /? 114
6.3.4 EFFECTS OF STRESS ON CRACK DENSITY 121
6.3.5 RESULTS 123
6.3.6 ANISOTROPY 123
6.3.7 CORING AND DAMAGE 127
6.4 CALIBRATION WITH LITERATURE DATA 129
6.5 COMPARISON O F ROCK PHYSICS MODELS 133
6.6 SUMMARY 136
REFERENCES 137
7 FORWARD MODELLING O F SEISMIC PROPERTIES 141
7.1 INTRODUCTION 141
7.2 SEISMODEL WORKFLOW 142
7.2.1 INPUT O F RESULTS AND PARAMETERS 142
7.2.2 INITIALISATION 142
7.2.3 STRESS DEPENDENCE 144
7.2.4 FRACTURES 145
7.2.5 FLUID SUBSTITUTION 145
7.2.6 SEISMODEL OUTPUT 146
7.3 RESULTS FROM SIMPLE GEOMECHANICAL MODELS 146
7.3.1 OVERBURDEN TRAVEL TIME-SHIFTS 146
7.3.2 SHEAR WAVE SPLITTING 148
7.4 SUMMARY 150
REFERENCES 150
IMAGE 4
XVI CONTENTS
8 LINKING GEOMECHANICAL MODELLING AND MICROSEISMIC
OBSERVATIONS AT WEYBURN 153
8.1 INTRODUCTION 153
8.2 MODEL DESCRIPTION 154
8.2.1 FLUID FLOW SIMULATION 155
8.2.2 GEOMECHANICAL MODEL 155
8.2.3 MATERIAL PROPERTIES 157
8.2.4 ROCK PHYSICS PROPERTIES 157
8.3 RESULTS 158
8.3.1 STRESS EVOLUTION AND FAILURE 158
8.3.2 SEISMIC PROPERTIES 160
8.4 A SOFTER RESERVOIR? 162
8.4.1 HETEROGENEITY 165
8.5 DISCUSSION 168
8.6 SUMMARY 169
REFERENCES 170
9 CONCLUSIONS 171
9.1 NOVEL CONTRIBUTIONS 175
9.2 FUTURE WORK 176
REFERENCES 177
APPENDIX: IN SUPPORT O F CARBON CAPTURE AND STROAGE 179 |
any_adam_object | 1 |
author | Verdon, James P. |
author_facet | Verdon, James P. |
author_role | aut |
author_sort | Verdon, James P. |
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bvnumber | BV039965058 |
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dewey-hundreds | 600 - Technology (Applied sciences) |
dewey-ones | 628 - Sanitary engineering 624 - Civil engineering |
dewey-raw | 628.53 624.151 |
dewey-search | 628.53 624.151 |
dewey-sort | 3628.53 |
dewey-tens | 620 - Engineering and allied operations |
discipline | Geologie / Paläontologie Bauingenieurwesen |
format | Thesis Book |
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spelling | Verdon, James P. Verfasser aut Microseismic monitoring and geomechanical modelling of CO 2 storage in subsurface reservoirs James P. Verdon Berlin [u.a.] Springer 2012 XVI, 183 S. Ill., graph. Darst. txt rdacontent n rdamedia nc rdacarrier Springer theses Zugl.: Bristol, Univ., Diss., [2010] Mikroseismik (DE-588)4169850-2 gnd rswk-swf Carbon dioxide capture and storage (DE-588)7628985-0 gnd rswk-swf Unterirdische Lagerung (DE-588)4187003-7 gnd rswk-swf Geomechanik (DE-588)4126903-2 gnd rswk-swf Numerisches Modell (DE-588)4338132-7 gnd rswk-swf (DE-588)4113937-9 Hochschulschrift gnd-content Carbon dioxide capture and storage (DE-588)7628985-0 s Unterirdische Lagerung (DE-588)4187003-7 s Mikroseismik (DE-588)4169850-2 s Geomechanik (DE-588)4126903-2 s Numerisches Modell (DE-588)4338132-7 s DE-604 Erscheint auch als Online-Ausgabe 978-3-642-25388-1 text/html http://deposit.dnb.de/cgi-bin/dokserv?id=3899773&prov=M&dok_var=1&dok_ext=htm Inhaltstext DNB Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=024822717&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Verdon, James P. Microseismic monitoring and geomechanical modelling of CO 2 storage in subsurface reservoirs Mikroseismik (DE-588)4169850-2 gnd Carbon dioxide capture and storage (DE-588)7628985-0 gnd Unterirdische Lagerung (DE-588)4187003-7 gnd Geomechanik (DE-588)4126903-2 gnd Numerisches Modell (DE-588)4338132-7 gnd |
subject_GND | (DE-588)4169850-2 (DE-588)7628985-0 (DE-588)4187003-7 (DE-588)4126903-2 (DE-588)4338132-7 (DE-588)4113937-9 |
title | Microseismic monitoring and geomechanical modelling of CO 2 storage in subsurface reservoirs |
title_auth | Microseismic monitoring and geomechanical modelling of CO 2 storage in subsurface reservoirs |
title_exact_search | Microseismic monitoring and geomechanical modelling of CO 2 storage in subsurface reservoirs |
title_full | Microseismic monitoring and geomechanical modelling of CO 2 storage in subsurface reservoirs James P. Verdon |
title_fullStr | Microseismic monitoring and geomechanical modelling of CO 2 storage in subsurface reservoirs James P. Verdon |
title_full_unstemmed | Microseismic monitoring and geomechanical modelling of CO 2 storage in subsurface reservoirs James P. Verdon |
title_short | Microseismic monitoring and geomechanical modelling of CO 2 storage in subsurface reservoirs |
title_sort | microseismic monitoring and geomechanical modelling of co 2 storage in subsurface reservoirs |
topic | Mikroseismik (DE-588)4169850-2 gnd Carbon dioxide capture and storage (DE-588)7628985-0 gnd Unterirdische Lagerung (DE-588)4187003-7 gnd Geomechanik (DE-588)4126903-2 gnd Numerisches Modell (DE-588)4338132-7 gnd |
topic_facet | Mikroseismik Carbon dioxide capture and storage Unterirdische Lagerung Geomechanik Numerisches Modell Hochschulschrift |
url | http://deposit.dnb.de/cgi-bin/dokserv?id=3899773&prov=M&dok_var=1&dok_ext=htm http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=024822717&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
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