Porous rock fracture mechanics : with application to hydraulic fracturing, drilling and structural engineering
1.3 Hydraulic fracturing conceptual models1.3.1 Rock failure and the stimulated volume; 1.4 Mechanical interactions of multiple hydraulic fractures; 1.4.1 Some insights on hydraulic fracture spacing optimization using numerical simulations; 1.4.2 The role of rock fabric and structure; 1.4.2.1 Role o...
Ausführliche Beschreibung
Autor*in: |
Shojaei, Amir [herausgeberIn] Shao, Jianfu [herausgeberIn] |
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Format: |
E-Book |
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Sprache: |
Englisch |
Erschienen: |
Cambridge, MA: Woodhead Publishing is an imprint of Elsevier ; 2017 |
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Schlagwörter: |
Gesteinsmechanik / Porosität / Bruchmechanik / Poröser Stoff / Fracking / Tiefbohren |
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Schlagwörter: | |
Formangabe: |
Electronic books |
Anmerkung: |
Includes index. - Online resource; title from PDF title page (EBSCO, viewed May 31, 2017) |
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Umfang: |
Online Ressource |
Reproduktion: |
Online-Ausg. |
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Weitere Ausgabe: |
Erscheint auch als Druck-Ausgabe: Porous rock fracture mechanics - Cambridge, Mass. : Elsevier, Woodhead Publishing, 2017 |
Reihe: |
Woodhead Publishing series in civil and structural engineering |
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Links: | |
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ISBN: |
978-0-08-100782-2 0-08-100782-5 |
Katalog-ID: |
165530870X |
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520 | |a 1.3 Hydraulic fracturing conceptual models1.3.1 Rock failure and the stimulated volume; 1.4 Mechanical interactions of multiple hydraulic fractures; 1.4.1 Some insights on hydraulic fracture spacing optimization using numerical simulations; 1.4.2 The role of rock fabric and structure; 1.4.2.1 Role of rock anisotropy; 1.4.2.2 Influence of natural fractures on hydraulic fractures; 1.4.3 The importance of 3D effects; 1.5 Conclusions; References; II. Coupled Fluid Structural Deformation and Fracture Mechanisms in Porous | ||
520 | |a 2 Anisotropic poroplasticity in saturated porous media, effect of confining pressure, and elevated temperature2.1 Introduction; 2.2 General framework of poroplastic modeling; 2.2.1 Effective stress concept in poroplasticity; 2.3 Experimental investigation on a typical porous rock; 2.4 Anisotropic plastic behavior of rocks; 2.5 Effects of temperature on anisotropic rocks; 2.6 Conclusions; References; 3 Coupling in hydraulic fracturing simulation; 3.1 Introduction: fluid-driven fracture propagation in rocks; 3.2 Coupling in reservoir geomechanics; 3.3 Fracture-matrix fluid exchange ("leakoff") | ||
520 | |a 3.4 Coupling fluid and solid3.5 Coupling proppant transport and placement; 3.6 Thermal coupling; 3.7 Coupling in acid fracturing; 3.8 Conclusion; References; 4 Stress-induced permeability evolutions and erosion damage of porous rocks; 4.1 Introduction; 4.2 Laboratory tests; 4.2.1 Steady and transient permeability tests of sandstone under triaxial compression; 4.2.1.1 Steady permeability tests; 4.2.1.2 Transient pulse tests; 4.2.2 Hydro-mechanical-chemical coupling behavior of sandstone; 4.2.2.1 Creep tests with injection of CO2 alone and CO2-brine solution | ||
520 | |a Creep tests with injection of CO2 aloneCreep tests with injection of CO2-brine; 4.2.2.2 Indentation tests on samples after CO2-brine-rock reaction; 4.3 Numerical simulations of hydro-mechanical-chemical coupling behavior; 4.3.1 General framework; 4.3.2 Special model for sandstone; 4.3.2.1 Mechanical modeling; 4.3.2.2 Mass-transfer modeling; 4.3.2.3 Porosity evolution and chemical damage; 4.3.2.4 Poromechanical modeling; 4.3.3 Numerical application; 4.3.3.1 Simulation of chemical dissolution process; 4.3.3.2 Simulation of mechanical behavior | ||
520 | |a Front Cover; Porous Rock Fracture Mechanics; Copyright Page; Dedication; Contents; List of contributors; Preface; Introduction; Rocks fracture mechanics; Scale effects on fracture behavior; Effect of tensile and compressive stress fields on rocks' fracture mechanics; Rock fracture mechanisms and fluid effects; Environmental effects; Time effect on rocks' failure behavior; I. Introduction; 1 Application of rock failure simulation in design optimization of the hydraulic fracturing; 1.1 Introduction; 1.2 Reservoir stimulation by hydraulic fracturing of horizontal wells | ||
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Shojaei, Jianfu Shao Cambridge, MA Woodhead Publishing is an imprint of Elsevier 2017 Online Ressource nicht spezifiziert zzz rdacontent nicht spezifiziert z rdamedia nicht spezifiziert zu rdacarrier Woodhead Publishing series in civil and structural engineering Includes index. - Online resource; title from PDF title page (EBSCO, viewed May 31, 2017) 1.3 Hydraulic fracturing conceptual models1.3.1 Rock failure and the stimulated volume; 1.4 Mechanical interactions of multiple hydraulic fractures; 1.4.1 Some insights on hydraulic fracture spacing optimization using numerical simulations; 1.4.2 The role of rock fabric and structure; 1.4.2.1 Role of rock anisotropy; 1.4.2.2 Influence of natural fractures on hydraulic fractures; 1.4.3 The importance of 3D effects; 1.5 Conclusions; References; II. Coupled Fluid Structural Deformation and Fracture Mechanisms in Porous 2 Anisotropic poroplasticity in saturated porous media, effect of confining pressure, and elevated temperature2.1 Introduction; 2.2 General framework of poroplastic modeling; 2.2.1 Effective stress concept in poroplasticity; 2.3 Experimental investigation on a typical porous rock; 2.4 Anisotropic plastic behavior of rocks; 2.5 Effects of temperature on anisotropic rocks; 2.6 Conclusions; References; 3 Coupling in hydraulic fracturing simulation; 3.1 Introduction: fluid-driven fracture propagation in rocks; 3.2 Coupling in reservoir geomechanics; 3.3 Fracture-matrix fluid exchange ("leakoff") 3.4 Coupling fluid and solid3.5 Coupling proppant transport and placement; 3.6 Thermal coupling; 3.7 Coupling in acid fracturing; 3.8 Conclusion; References; 4 Stress-induced permeability evolutions and erosion damage of porous rocks; 4.1 Introduction; 4.2 Laboratory tests; 4.2.1 Steady and transient permeability tests of sandstone under triaxial compression; 4.2.1.1 Steady permeability tests; 4.2.1.2 Transient pulse tests; 4.2.2 Hydro-mechanical-chemical coupling behavior of sandstone; 4.2.2.1 Creep tests with injection of CO2 alone and CO2-brine solution Creep tests with injection of CO2 aloneCreep tests with injection of CO2-brine; 4.2.2.2 Indentation tests on samples after CO2-brine-rock reaction; 4.3 Numerical simulations of hydro-mechanical-chemical coupling behavior; 4.3.1 General framework; 4.3.2 Special model for sandstone; 4.3.2.1 Mechanical modeling; 4.3.2.2 Mass-transfer modeling; 4.3.2.3 Porosity evolution and chemical damage; 4.3.2.4 Poromechanical modeling; 4.3.3 Numerical application; 4.3.3.1 Simulation of chemical dissolution process; 4.3.3.2 Simulation of mechanical behavior Front Cover; Porous Rock Fracture Mechanics; Copyright Page; Dedication; Contents; List of contributors; Preface; Introduction; Rocks fracture mechanics; Scale effects on fracture behavior; Effect of tensile and compressive stress fields on rocks' fracture mechanics; Rock fracture mechanisms and fluid effects; Environmental effects; Time effect on rocks' failure behavior; I. Introduction; 1 Application of rock failure simulation in design optimization of the hydraulic fracturing; 1.1 Introduction; 1.2 Reservoir stimulation by hydraulic fracturing of horizontal wells Online-Ausg. Rock mechanics Fracture mechanics Porous materials Rock mechanics Porous materials Fracture mechanics TECHNOLOGY & ENGINEERING ; Civil ; General Fracture mechanics Porous materials Rock mechanics Mécanique des roches (CaQQLa)201-0009521 Mécanique de la rupture (CaQQLa)201-0028000 Electronic books Electronic books s (DE-588)4157159-9 (DE-627)105502995 (DE-576)209832266 Gesteinsmechanik gnd s (DE-588)4175378-1 (DE-627)105364770 (DE-576)20996314X Porosität gnd s (DE-588)4112837-0 (DE-627)104493593 (DE-576)209471263 Bruchmechanik gnd s (DE-588)4046811-2 (DE-627)106196790 (DE-576)209071044 Poröser Stoff gnd s (DE-588)4228013-8 (DE-627)104959533 (DE-576)210327278 Fracking gnd s (DE-588)4191518-5 (DE-627)105241539 (DE-576)210073993 Tiefbohren gnd (DE-627) Shojaei, Amir herausgeberin edt Shao, Jianfu herausgeberin edt 0081007817 Erscheint auch als Druck-Ausgabe Porous rock fracture mechanics Cambridge, Mass. : Elsevier, Woodhead Publishing, 2017 xviii, 317 Seiten (DE-627)1680657887 9780081007815 https://www.sciencedirect.com/science/book/9780081007815 X:ELSEVIER Verlag lizenzpflichtig http://www.sciencedirect.com/science/book/9780081007815 X:ELSEVIER Verlag Volltext http://www.gbv.de/dms/bowker/toc/9780081007815.pdf V:DE-601 X:Bowker application/pdf 2018-01-26 Verlag Inhaltsverzeichnis Inhaltsverzeichnis (DE-627)889891419 BSZ-33-EBS-HSAA GBV-33-EBS-MRI GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EGE 2017 ZDB-33-EBS ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_63 ISIL_DE-Wim2 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 GBV ExPruef BO 045F 624.15132 045F 624.1/5132 63 01 3401 1712850458 E-Books Lizenz Elsevier z 02-05-17 105 01 0841 4074533553 OLR-ELV-TEST Vervielfältigungen (z.B. 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9780081007822 978-0-08-100782-2 0081007825 0-08-100782-5 9780081007815 0081007817 (DE-627)165530870X (DE-576)517989697 (DE-599)BSZ517989697 (OCoLC)986538760 (EBP)014123215 (ELSEVIER)ocn986538760 DE-627 ger DE-627 rakwb eng XD-US TA706 TEC009020 bisacsh TEC 009020 bisacsh Porous rock fracture mechanics with application to hydraulic fracturing, drilling and structural engineering edited by Amir K. Shojaei, Jianfu Shao Cambridge, MA Woodhead Publishing is an imprint of Elsevier 2017 Online Ressource nicht spezifiziert zzz rdacontent nicht spezifiziert z rdamedia nicht spezifiziert zu rdacarrier Woodhead Publishing series in civil and structural engineering Includes index. - Online resource; title from PDF title page (EBSCO, viewed May 31, 2017) 1.3 Hydraulic fracturing conceptual models1.3.1 Rock failure and the stimulated volume; 1.4 Mechanical interactions of multiple hydraulic fractures; 1.4.1 Some insights on hydraulic fracture spacing optimization using numerical simulations; 1.4.2 The role of rock fabric and structure; 1.4.2.1 Role of rock anisotropy; 1.4.2.2 Influence of natural fractures on hydraulic fractures; 1.4.3 The importance of 3D effects; 1.5 Conclusions; References; II. Coupled Fluid Structural Deformation and Fracture Mechanisms in Porous 2 Anisotropic poroplasticity in saturated porous media, effect of confining pressure, and elevated temperature2.1 Introduction; 2.2 General framework of poroplastic modeling; 2.2.1 Effective stress concept in poroplasticity; 2.3 Experimental investigation on a typical porous rock; 2.4 Anisotropic plastic behavior of rocks; 2.5 Effects of temperature on anisotropic rocks; 2.6 Conclusions; References; 3 Coupling in hydraulic fracturing simulation; 3.1 Introduction: fluid-driven fracture propagation in rocks; 3.2 Coupling in reservoir geomechanics; 3.3 Fracture-matrix fluid exchange ("leakoff") 3.4 Coupling fluid and solid3.5 Coupling proppant transport and placement; 3.6 Thermal coupling; 3.7 Coupling in acid fracturing; 3.8 Conclusion; References; 4 Stress-induced permeability evolutions and erosion damage of porous rocks; 4.1 Introduction; 4.2 Laboratory tests; 4.2.1 Steady and transient permeability tests of sandstone under triaxial compression; 4.2.1.1 Steady permeability tests; 4.2.1.2 Transient pulse tests; 4.2.2 Hydro-mechanical-chemical coupling behavior of sandstone; 4.2.2.1 Creep tests with injection of CO2 alone and CO2-brine solution Creep tests with injection of CO2 aloneCreep tests with injection of CO2-brine; 4.2.2.2 Indentation tests on samples after CO2-brine-rock reaction; 4.3 Numerical simulations of hydro-mechanical-chemical coupling behavior; 4.3.1 General framework; 4.3.2 Special model for sandstone; 4.3.2.1 Mechanical modeling; 4.3.2.2 Mass-transfer modeling; 4.3.2.3 Porosity evolution and chemical damage; 4.3.2.4 Poromechanical modeling; 4.3.3 Numerical application; 4.3.3.1 Simulation of chemical dissolution process; 4.3.3.2 Simulation of mechanical behavior Front Cover; Porous Rock Fracture Mechanics; Copyright Page; Dedication; Contents; List of contributors; Preface; Introduction; Rocks fracture mechanics; Scale effects on fracture behavior; Effect of tensile and compressive stress fields on rocks' fracture mechanics; Rock fracture mechanisms and fluid effects; Environmental effects; Time effect on rocks' failure behavior; I. Introduction; 1 Application of rock failure simulation in design optimization of the hydraulic fracturing; 1.1 Introduction; 1.2 Reservoir stimulation by hydraulic fracturing of horizontal wells Online-Ausg. Rock mechanics Fracture mechanics Porous materials Rock mechanics Porous materials Fracture mechanics TECHNOLOGY & ENGINEERING ; Civil ; General Fracture mechanics Porous materials Rock mechanics Mécanique des roches (CaQQLa)201-0009521 Mécanique de la rupture (CaQQLa)201-0028000 Electronic books Electronic books s (DE-588)4157159-9 (DE-627)105502995 (DE-576)209832266 Gesteinsmechanik gnd s (DE-588)4175378-1 (DE-627)105364770 (DE-576)20996314X Porosität gnd s (DE-588)4112837-0 (DE-627)104493593 (DE-576)209471263 Bruchmechanik gnd s (DE-588)4046811-2 (DE-627)106196790 (DE-576)209071044 Poröser Stoff gnd s (DE-588)4228013-8 (DE-627)104959533 (DE-576)210327278 Fracking gnd s (DE-588)4191518-5 (DE-627)105241539 (DE-576)210073993 Tiefbohren gnd (DE-627) Shojaei, Amir herausgeberin edt Shao, Jianfu herausgeberin edt 0081007817 Erscheint auch als Druck-Ausgabe Porous rock fracture mechanics Cambridge, Mass. : Elsevier, Woodhead Publishing, 2017 xviii, 317 Seiten (DE-627)1680657887 9780081007815 https://www.sciencedirect.com/science/book/9780081007815 X:ELSEVIER Verlag lizenzpflichtig http://www.sciencedirect.com/science/book/9780081007815 X:ELSEVIER Verlag Volltext http://www.gbv.de/dms/bowker/toc/9780081007815.pdf V:DE-601 X:Bowker application/pdf 2018-01-26 Verlag Inhaltsverzeichnis Inhaltsverzeichnis (DE-627)889891419 BSZ-33-EBS-HSAA GBV-33-EBS-MRI GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EGE 2017 ZDB-33-EBS ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_63 ISIL_DE-Wim2 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 GBV ExPruef BO 045F 624.15132 045F 624.1/5132 63 01 3401 1712850458 E-Books Lizenz Elsevier z 02-05-17 105 01 0841 4074533553 OLR-ELV-TEST Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Testzugang ZHB Lübeck z 26-02-22 132 01 0959 4499995205 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Zeitlich begrenzte Lizenzierung k 13-03-24 185 01 3519 4514691208 OLR-EBS Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. z 23-04-24 370 01 4370 4540277421 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 20-06-24 2020 01 DE-Ch1 4520358051 00 --%%-- --%%-- n n Campuslizenz l01 03-05-24 2111 02 DE-944 4046048069 00 --%%-- E-Book Elsevier --%%-- n Elektronischer Volltext - Campuslizenz l01 27-01-22 63 01 3401 E-Book https://www.sciencedirect.com/science/book/9780081007815 105 01 0841 http://www.sciencedirect.com/science/book/9780081007815 132 01 0959 Zugriff nur für Angehörige der Hochschule Osnabrück im Hochschulnetz https://www.sciencedirect.com/science/book/9780081007815 185 01 3519 http://www.sciencedirect.com/science/book/9780081007815 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von außerhalb nur für HCU-Angehörige möglich https://www.sciencedirect.com/science/book/9780081007815 2020 01 DE-Ch1 https://www.sciencedirect.com/science/book/9780081007815 2111 02 DE-944 https://www.sciencedirect.com/science/book/9780081007815 132 01 0959 00 EBooks Elsevier Engineering 63 00 DE-Wim2 00 Ub 0082 63 01 3401 ebo-2633 63 01 3401 E-Books Lizenz Elsevier 105 01 0841 OLR-ELV-TEST 132 01 0959 EBS Elsevier 185 01 3519 OLR-EBS 370 01 4370 EBS Elsevier |
allfields_unstemmed |
9780081007822 978-0-08-100782-2 0081007825 0-08-100782-5 9780081007815 0081007817 (DE-627)165530870X (DE-576)517989697 (DE-599)BSZ517989697 (OCoLC)986538760 (EBP)014123215 (ELSEVIER)ocn986538760 DE-627 ger DE-627 rakwb eng XD-US TA706 TEC009020 bisacsh TEC 009020 bisacsh Porous rock fracture mechanics with application to hydraulic fracturing, drilling and structural engineering edited by Amir K. Shojaei, Jianfu Shao Cambridge, MA Woodhead Publishing is an imprint of Elsevier 2017 Online Ressource nicht spezifiziert zzz rdacontent nicht spezifiziert z rdamedia nicht spezifiziert zu rdacarrier Woodhead Publishing series in civil and structural engineering Includes index. - Online resource; title from PDF title page (EBSCO, viewed May 31, 2017) 1.3 Hydraulic fracturing conceptual models1.3.1 Rock failure and the stimulated volume; 1.4 Mechanical interactions of multiple hydraulic fractures; 1.4.1 Some insights on hydraulic fracture spacing optimization using numerical simulations; 1.4.2 The role of rock fabric and structure; 1.4.2.1 Role of rock anisotropy; 1.4.2.2 Influence of natural fractures on hydraulic fractures; 1.4.3 The importance of 3D effects; 1.5 Conclusions; References; II. Coupled Fluid Structural Deformation and Fracture Mechanisms in Porous 2 Anisotropic poroplasticity in saturated porous media, effect of confining pressure, and elevated temperature2.1 Introduction; 2.2 General framework of poroplastic modeling; 2.2.1 Effective stress concept in poroplasticity; 2.3 Experimental investigation on a typical porous rock; 2.4 Anisotropic plastic behavior of rocks; 2.5 Effects of temperature on anisotropic rocks; 2.6 Conclusions; References; 3 Coupling in hydraulic fracturing simulation; 3.1 Introduction: fluid-driven fracture propagation in rocks; 3.2 Coupling in reservoir geomechanics; 3.3 Fracture-matrix fluid exchange ("leakoff") 3.4 Coupling fluid and solid3.5 Coupling proppant transport and placement; 3.6 Thermal coupling; 3.7 Coupling in acid fracturing; 3.8 Conclusion; References; 4 Stress-induced permeability evolutions and erosion damage of porous rocks; 4.1 Introduction; 4.2 Laboratory tests; 4.2.1 Steady and transient permeability tests of sandstone under triaxial compression; 4.2.1.1 Steady permeability tests; 4.2.1.2 Transient pulse tests; 4.2.2 Hydro-mechanical-chemical coupling behavior of sandstone; 4.2.2.1 Creep tests with injection of CO2 alone and CO2-brine solution Creep tests with injection of CO2 aloneCreep tests with injection of CO2-brine; 4.2.2.2 Indentation tests on samples after CO2-brine-rock reaction; 4.3 Numerical simulations of hydro-mechanical-chemical coupling behavior; 4.3.1 General framework; 4.3.2 Special model for sandstone; 4.3.2.1 Mechanical modeling; 4.3.2.2 Mass-transfer modeling; 4.3.2.3 Porosity evolution and chemical damage; 4.3.2.4 Poromechanical modeling; 4.3.3 Numerical application; 4.3.3.1 Simulation of chemical dissolution process; 4.3.3.2 Simulation of mechanical behavior Front Cover; Porous Rock Fracture Mechanics; Copyright Page; Dedication; Contents; List of contributors; Preface; Introduction; Rocks fracture mechanics; Scale effects on fracture behavior; Effect of tensile and compressive stress fields on rocks' fracture mechanics; Rock fracture mechanisms and fluid effects; Environmental effects; Time effect on rocks' failure behavior; I. Introduction; 1 Application of rock failure simulation in design optimization of the hydraulic fracturing; 1.1 Introduction; 1.2 Reservoir stimulation by hydraulic fracturing of horizontal wells Online-Ausg. Rock mechanics Fracture mechanics Porous materials Rock mechanics Porous materials Fracture mechanics TECHNOLOGY & ENGINEERING ; Civil ; General Fracture mechanics Porous materials Rock mechanics Mécanique des roches (CaQQLa)201-0009521 Mécanique de la rupture (CaQQLa)201-0028000 Electronic books Electronic books s (DE-588)4157159-9 (DE-627)105502995 (DE-576)209832266 Gesteinsmechanik gnd s (DE-588)4175378-1 (DE-627)105364770 (DE-576)20996314X Porosität gnd s (DE-588)4112837-0 (DE-627)104493593 (DE-576)209471263 Bruchmechanik gnd s (DE-588)4046811-2 (DE-627)106196790 (DE-576)209071044 Poröser Stoff gnd s (DE-588)4228013-8 (DE-627)104959533 (DE-576)210327278 Fracking gnd s (DE-588)4191518-5 (DE-627)105241539 (DE-576)210073993 Tiefbohren gnd (DE-627) Shojaei, Amir herausgeberin edt Shao, Jianfu herausgeberin edt 0081007817 Erscheint auch als Druck-Ausgabe Porous rock fracture mechanics Cambridge, Mass. : Elsevier, Woodhead Publishing, 2017 xviii, 317 Seiten (DE-627)1680657887 9780081007815 https://www.sciencedirect.com/science/book/9780081007815 X:ELSEVIER Verlag lizenzpflichtig http://www.sciencedirect.com/science/book/9780081007815 X:ELSEVIER Verlag Volltext http://www.gbv.de/dms/bowker/toc/9780081007815.pdf V:DE-601 X:Bowker application/pdf 2018-01-26 Verlag Inhaltsverzeichnis Inhaltsverzeichnis (DE-627)889891419 BSZ-33-EBS-HSAA GBV-33-EBS-MRI GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EGE 2017 ZDB-33-EBS ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_63 ISIL_DE-Wim2 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 GBV ExPruef BO 045F 624.15132 045F 624.1/5132 63 01 3401 1712850458 E-Books Lizenz Elsevier z 02-05-17 105 01 0841 4074533553 OLR-ELV-TEST Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Testzugang ZHB Lübeck z 26-02-22 132 01 0959 4499995205 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Zeitlich begrenzte Lizenzierung k 13-03-24 185 01 3519 4514691208 OLR-EBS Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. z 23-04-24 370 01 4370 4540277421 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 20-06-24 2020 01 DE-Ch1 4520358051 00 --%%-- --%%-- n n Campuslizenz l01 03-05-24 2111 02 DE-944 4046048069 00 --%%-- E-Book Elsevier --%%-- n Elektronischer Volltext - Campuslizenz l01 27-01-22 63 01 3401 E-Book https://www.sciencedirect.com/science/book/9780081007815 105 01 0841 http://www.sciencedirect.com/science/book/9780081007815 132 01 0959 Zugriff nur für Angehörige der Hochschule Osnabrück im Hochschulnetz https://www.sciencedirect.com/science/book/9780081007815 185 01 3519 http://www.sciencedirect.com/science/book/9780081007815 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von außerhalb nur für HCU-Angehörige möglich https://www.sciencedirect.com/science/book/9780081007815 2020 01 DE-Ch1 https://www.sciencedirect.com/science/book/9780081007815 2111 02 DE-944 https://www.sciencedirect.com/science/book/9780081007815 132 01 0959 00 EBooks Elsevier Engineering 63 00 DE-Wim2 00 Ub 0082 63 01 3401 ebo-2633 63 01 3401 E-Books Lizenz Elsevier 105 01 0841 OLR-ELV-TEST 132 01 0959 EBS Elsevier 185 01 3519 OLR-EBS 370 01 4370 EBS Elsevier |
allfieldsGer |
9780081007822 978-0-08-100782-2 0081007825 0-08-100782-5 9780081007815 0081007817 (DE-627)165530870X (DE-576)517989697 (DE-599)BSZ517989697 (OCoLC)986538760 (EBP)014123215 (ELSEVIER)ocn986538760 DE-627 ger DE-627 rakwb eng XD-US TA706 TEC009020 bisacsh TEC 009020 bisacsh Porous rock fracture mechanics with application to hydraulic fracturing, drilling and structural engineering edited by Amir K. Shojaei, Jianfu Shao Cambridge, MA Woodhead Publishing is an imprint of Elsevier 2017 Online Ressource nicht spezifiziert zzz rdacontent nicht spezifiziert z rdamedia nicht spezifiziert zu rdacarrier Woodhead Publishing series in civil and structural engineering Includes index. - Online resource; title from PDF title page (EBSCO, viewed May 31, 2017) 1.3 Hydraulic fracturing conceptual models1.3.1 Rock failure and the stimulated volume; 1.4 Mechanical interactions of multiple hydraulic fractures; 1.4.1 Some insights on hydraulic fracture spacing optimization using numerical simulations; 1.4.2 The role of rock fabric and structure; 1.4.2.1 Role of rock anisotropy; 1.4.2.2 Influence of natural fractures on hydraulic fractures; 1.4.3 The importance of 3D effects; 1.5 Conclusions; References; II. Coupled Fluid Structural Deformation and Fracture Mechanisms in Porous 2 Anisotropic poroplasticity in saturated porous media, effect of confining pressure, and elevated temperature2.1 Introduction; 2.2 General framework of poroplastic modeling; 2.2.1 Effective stress concept in poroplasticity; 2.3 Experimental investigation on a typical porous rock; 2.4 Anisotropic plastic behavior of rocks; 2.5 Effects of temperature on anisotropic rocks; 2.6 Conclusions; References; 3 Coupling in hydraulic fracturing simulation; 3.1 Introduction: fluid-driven fracture propagation in rocks; 3.2 Coupling in reservoir geomechanics; 3.3 Fracture-matrix fluid exchange ("leakoff") 3.4 Coupling fluid and solid3.5 Coupling proppant transport and placement; 3.6 Thermal coupling; 3.7 Coupling in acid fracturing; 3.8 Conclusion; References; 4 Stress-induced permeability evolutions and erosion damage of porous rocks; 4.1 Introduction; 4.2 Laboratory tests; 4.2.1 Steady and transient permeability tests of sandstone under triaxial compression; 4.2.1.1 Steady permeability tests; 4.2.1.2 Transient pulse tests; 4.2.2 Hydro-mechanical-chemical coupling behavior of sandstone; 4.2.2.1 Creep tests with injection of CO2 alone and CO2-brine solution Creep tests with injection of CO2 aloneCreep tests with injection of CO2-brine; 4.2.2.2 Indentation tests on samples after CO2-brine-rock reaction; 4.3 Numerical simulations of hydro-mechanical-chemical coupling behavior; 4.3.1 General framework; 4.3.2 Special model for sandstone; 4.3.2.1 Mechanical modeling; 4.3.2.2 Mass-transfer modeling; 4.3.2.3 Porosity evolution and chemical damage; 4.3.2.4 Poromechanical modeling; 4.3.3 Numerical application; 4.3.3.1 Simulation of chemical dissolution process; 4.3.3.2 Simulation of mechanical behavior Front Cover; Porous Rock Fracture Mechanics; Copyright Page; Dedication; Contents; List of contributors; Preface; Introduction; Rocks fracture mechanics; Scale effects on fracture behavior; Effect of tensile and compressive stress fields on rocks' fracture mechanics; Rock fracture mechanisms and fluid effects; Environmental effects; Time effect on rocks' failure behavior; I. Introduction; 1 Application of rock failure simulation in design optimization of the hydraulic fracturing; 1.1 Introduction; 1.2 Reservoir stimulation by hydraulic fracturing of horizontal wells Online-Ausg. Rock mechanics Fracture mechanics Porous materials Rock mechanics Porous materials Fracture mechanics TECHNOLOGY & ENGINEERING ; Civil ; General Fracture mechanics Porous materials Rock mechanics Mécanique des roches (CaQQLa)201-0009521 Mécanique de la rupture (CaQQLa)201-0028000 Electronic books Electronic books s (DE-588)4157159-9 (DE-627)105502995 (DE-576)209832266 Gesteinsmechanik gnd s (DE-588)4175378-1 (DE-627)105364770 (DE-576)20996314X Porosität gnd s (DE-588)4112837-0 (DE-627)104493593 (DE-576)209471263 Bruchmechanik gnd s (DE-588)4046811-2 (DE-627)106196790 (DE-576)209071044 Poröser Stoff gnd s (DE-588)4228013-8 (DE-627)104959533 (DE-576)210327278 Fracking gnd s (DE-588)4191518-5 (DE-627)105241539 (DE-576)210073993 Tiefbohren gnd (DE-627) Shojaei, Amir herausgeberin edt Shao, Jianfu herausgeberin edt 0081007817 Erscheint auch als Druck-Ausgabe Porous rock fracture mechanics Cambridge, Mass. : Elsevier, Woodhead Publishing, 2017 xviii, 317 Seiten (DE-627)1680657887 9780081007815 https://www.sciencedirect.com/science/book/9780081007815 X:ELSEVIER Verlag lizenzpflichtig http://www.sciencedirect.com/science/book/9780081007815 X:ELSEVIER Verlag Volltext http://www.gbv.de/dms/bowker/toc/9780081007815.pdf V:DE-601 X:Bowker application/pdf 2018-01-26 Verlag Inhaltsverzeichnis Inhaltsverzeichnis (DE-627)889891419 BSZ-33-EBS-HSAA GBV-33-EBS-MRI GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EGE 2017 ZDB-33-EBS ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_63 ISIL_DE-Wim2 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 GBV ExPruef BO 045F 624.15132 045F 624.1/5132 63 01 3401 1712850458 E-Books Lizenz Elsevier z 02-05-17 105 01 0841 4074533553 OLR-ELV-TEST Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Testzugang ZHB Lübeck z 26-02-22 132 01 0959 4499995205 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Zeitlich begrenzte Lizenzierung k 13-03-24 185 01 3519 4514691208 OLR-EBS Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. z 23-04-24 370 01 4370 4540277421 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 20-06-24 2020 01 DE-Ch1 4520358051 00 --%%-- --%%-- n n Campuslizenz l01 03-05-24 2111 02 DE-944 4046048069 00 --%%-- E-Book Elsevier --%%-- n Elektronischer Volltext - Campuslizenz l01 27-01-22 63 01 3401 E-Book https://www.sciencedirect.com/science/book/9780081007815 105 01 0841 http://www.sciencedirect.com/science/book/9780081007815 132 01 0959 Zugriff nur für Angehörige der Hochschule Osnabrück im Hochschulnetz https://www.sciencedirect.com/science/book/9780081007815 185 01 3519 http://www.sciencedirect.com/science/book/9780081007815 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von außerhalb nur für HCU-Angehörige möglich https://www.sciencedirect.com/science/book/9780081007815 2020 01 DE-Ch1 https://www.sciencedirect.com/science/book/9780081007815 2111 02 DE-944 https://www.sciencedirect.com/science/book/9780081007815 132 01 0959 00 EBooks Elsevier Engineering 63 00 DE-Wim2 00 Ub 0082 63 01 3401 ebo-2633 63 01 3401 E-Books Lizenz Elsevier 105 01 0841 OLR-ELV-TEST 132 01 0959 EBS Elsevier 185 01 3519 OLR-EBS 370 01 4370 EBS Elsevier |
allfieldsSound |
9780081007822 978-0-08-100782-2 0081007825 0-08-100782-5 9780081007815 0081007817 (DE-627)165530870X (DE-576)517989697 (DE-599)BSZ517989697 (OCoLC)986538760 (EBP)014123215 (ELSEVIER)ocn986538760 DE-627 ger DE-627 rakwb eng XD-US TA706 TEC009020 bisacsh TEC 009020 bisacsh Porous rock fracture mechanics with application to hydraulic fracturing, drilling and structural engineering edited by Amir K. Shojaei, Jianfu Shao Cambridge, MA Woodhead Publishing is an imprint of Elsevier 2017 Online Ressource nicht spezifiziert zzz rdacontent nicht spezifiziert z rdamedia nicht spezifiziert zu rdacarrier Woodhead Publishing series in civil and structural engineering Includes index. - Online resource; title from PDF title page (EBSCO, viewed May 31, 2017) 1.3 Hydraulic fracturing conceptual models1.3.1 Rock failure and the stimulated volume; 1.4 Mechanical interactions of multiple hydraulic fractures; 1.4.1 Some insights on hydraulic fracture spacing optimization using numerical simulations; 1.4.2 The role of rock fabric and structure; 1.4.2.1 Role of rock anisotropy; 1.4.2.2 Influence of natural fractures on hydraulic fractures; 1.4.3 The importance of 3D effects; 1.5 Conclusions; References; II. Coupled Fluid Structural Deformation and Fracture Mechanisms in Porous 2 Anisotropic poroplasticity in saturated porous media, effect of confining pressure, and elevated temperature2.1 Introduction; 2.2 General framework of poroplastic modeling; 2.2.1 Effective stress concept in poroplasticity; 2.3 Experimental investigation on a typical porous rock; 2.4 Anisotropic plastic behavior of rocks; 2.5 Effects of temperature on anisotropic rocks; 2.6 Conclusions; References; 3 Coupling in hydraulic fracturing simulation; 3.1 Introduction: fluid-driven fracture propagation in rocks; 3.2 Coupling in reservoir geomechanics; 3.3 Fracture-matrix fluid exchange ("leakoff") 3.4 Coupling fluid and solid3.5 Coupling proppant transport and placement; 3.6 Thermal coupling; 3.7 Coupling in acid fracturing; 3.8 Conclusion; References; 4 Stress-induced permeability evolutions and erosion damage of porous rocks; 4.1 Introduction; 4.2 Laboratory tests; 4.2.1 Steady and transient permeability tests of sandstone under triaxial compression; 4.2.1.1 Steady permeability tests; 4.2.1.2 Transient pulse tests; 4.2.2 Hydro-mechanical-chemical coupling behavior of sandstone; 4.2.2.1 Creep tests with injection of CO2 alone and CO2-brine solution Creep tests with injection of CO2 aloneCreep tests with injection of CO2-brine; 4.2.2.2 Indentation tests on samples after CO2-brine-rock reaction; 4.3 Numerical simulations of hydro-mechanical-chemical coupling behavior; 4.3.1 General framework; 4.3.2 Special model for sandstone; 4.3.2.1 Mechanical modeling; 4.3.2.2 Mass-transfer modeling; 4.3.2.3 Porosity evolution and chemical damage; 4.3.2.4 Poromechanical modeling; 4.3.3 Numerical application; 4.3.3.1 Simulation of chemical dissolution process; 4.3.3.2 Simulation of mechanical behavior Front Cover; Porous Rock Fracture Mechanics; Copyright Page; Dedication; Contents; List of contributors; Preface; Introduction; Rocks fracture mechanics; Scale effects on fracture behavior; Effect of tensile and compressive stress fields on rocks' fracture mechanics; Rock fracture mechanisms and fluid effects; Environmental effects; Time effect on rocks' failure behavior; I. Introduction; 1 Application of rock failure simulation in design optimization of the hydraulic fracturing; 1.1 Introduction; 1.2 Reservoir stimulation by hydraulic fracturing of horizontal wells Online-Ausg. Rock mechanics Fracture mechanics Porous materials Rock mechanics Porous materials Fracture mechanics TECHNOLOGY & ENGINEERING ; Civil ; General Fracture mechanics Porous materials Rock mechanics Mécanique des roches (CaQQLa)201-0009521 Mécanique de la rupture (CaQQLa)201-0028000 Electronic books Electronic books s (DE-588)4157159-9 (DE-627)105502995 (DE-576)209832266 Gesteinsmechanik gnd s (DE-588)4175378-1 (DE-627)105364770 (DE-576)20996314X Porosität gnd s (DE-588)4112837-0 (DE-627)104493593 (DE-576)209471263 Bruchmechanik gnd s (DE-588)4046811-2 (DE-627)106196790 (DE-576)209071044 Poröser Stoff gnd s (DE-588)4228013-8 (DE-627)104959533 (DE-576)210327278 Fracking gnd s (DE-588)4191518-5 (DE-627)105241539 (DE-576)210073993 Tiefbohren gnd (DE-627) Shojaei, Amir herausgeberin edt Shao, Jianfu herausgeberin edt 0081007817 Erscheint auch als Druck-Ausgabe Porous rock fracture mechanics Cambridge, Mass. : Elsevier, Woodhead Publishing, 2017 xviii, 317 Seiten (DE-627)1680657887 9780081007815 https://www.sciencedirect.com/science/book/9780081007815 X:ELSEVIER Verlag lizenzpflichtig http://www.sciencedirect.com/science/book/9780081007815 X:ELSEVIER Verlag Volltext http://www.gbv.de/dms/bowker/toc/9780081007815.pdf V:DE-601 X:Bowker application/pdf 2018-01-26 Verlag Inhaltsverzeichnis Inhaltsverzeichnis (DE-627)889891419 BSZ-33-EBS-HSAA GBV-33-EBS-MRI GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EGE 2017 ZDB-33-EBS ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_63 ISIL_DE-Wim2 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 GBV ExPruef BO 045F 624.15132 045F 624.1/5132 63 01 3401 1712850458 E-Books Lizenz Elsevier z 02-05-17 105 01 0841 4074533553 OLR-ELV-TEST Vervielfältigungen (z.B. 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1.3 Hydraulic fracturing conceptual models1.3.1 Rock failure and the stimulated volume; 1.4 Mechanical interactions of multiple hydraulic fractures; 1.4.1 Some insights on hydraulic fracture spacing optimization using numerical simulations; 1.4.2 The role of rock fabric and structure; 1.4.2.1 Role of rock anisotropy; 1.4.2.2 Influence of natural fractures on hydraulic fractures; 1.4.3 The importance of 3D effects; 1.5 Conclusions; References; II. Coupled Fluid Structural Deformation and Fracture Mechanisms in Porous 2 Anisotropic poroplasticity in saturated porous media, effect of confining pressure, and elevated temperature2.1 Introduction; 2.2 General framework of poroplastic modeling; 2.2.1 Effective stress concept in poroplasticity; 2.3 Experimental investigation on a typical porous rock; 2.4 Anisotropic plastic behavior of rocks; 2.5 Effects of temperature on anisotropic rocks; 2.6 Conclusions; References; 3 Coupling in hydraulic fracturing simulation; 3.1 Introduction: fluid-driven fracture propagation in rocks; 3.2 Coupling in reservoir geomechanics; 3.3 Fracture-matrix fluid exchange ("leakoff") 3.4 Coupling fluid and solid3.5 Coupling proppant transport and placement; 3.6 Thermal coupling; 3.7 Coupling in acid fracturing; 3.8 Conclusion; References; 4 Stress-induced permeability evolutions and erosion damage of porous rocks; 4.1 Introduction; 4.2 Laboratory tests; 4.2.1 Steady and transient permeability tests of sandstone under triaxial compression; 4.2.1.1 Steady permeability tests; 4.2.1.2 Transient pulse tests; 4.2.2 Hydro-mechanical-chemical coupling behavior of sandstone; 4.2.2.1 Creep tests with injection of CO2 alone and CO2-brine solution Creep tests with injection of CO2 aloneCreep tests with injection of CO2-brine; 4.2.2.2 Indentation tests on samples after CO2-brine-rock reaction; 4.3 Numerical simulations of hydro-mechanical-chemical coupling behavior; 4.3.1 General framework; 4.3.2 Special model for sandstone; 4.3.2.1 Mechanical modeling; 4.3.2.2 Mass-transfer modeling; 4.3.2.3 Porosity evolution and chemical damage; 4.3.2.4 Poromechanical modeling; 4.3.3 Numerical application; 4.3.3.1 Simulation of chemical dissolution process; 4.3.3.2 Simulation of mechanical behavior Front Cover; Porous Rock Fracture Mechanics; Copyright Page; Dedication; Contents; List of contributors; Preface; Introduction; Rocks fracture mechanics; Scale effects on fracture behavior; Effect of tensile and compressive stress fields on rocks' fracture mechanics; Rock fracture mechanisms and fluid effects; Environmental effects; Time effect on rocks' failure behavior; I. Introduction; 1 Application of rock failure simulation in design optimization of the hydraulic fracturing; 1.1 Introduction; 1.2 Reservoir stimulation by hydraulic fracturing of horizontal wells Includes index. - Online resource; title from PDF title page (EBSCO, viewed May 31, 2017) |
abstractGer |
1.3 Hydraulic fracturing conceptual models1.3.1 Rock failure and the stimulated volume; 1.4 Mechanical interactions of multiple hydraulic fractures; 1.4.1 Some insights on hydraulic fracture spacing optimization using numerical simulations; 1.4.2 The role of rock fabric and structure; 1.4.2.1 Role of rock anisotropy; 1.4.2.2 Influence of natural fractures on hydraulic fractures; 1.4.3 The importance of 3D effects; 1.5 Conclusions; References; II. Coupled Fluid Structural Deformation and Fracture Mechanisms in Porous 2 Anisotropic poroplasticity in saturated porous media, effect of confining pressure, and elevated temperature2.1 Introduction; 2.2 General framework of poroplastic modeling; 2.2.1 Effective stress concept in poroplasticity; 2.3 Experimental investigation on a typical porous rock; 2.4 Anisotropic plastic behavior of rocks; 2.5 Effects of temperature on anisotropic rocks; 2.6 Conclusions; References; 3 Coupling in hydraulic fracturing simulation; 3.1 Introduction: fluid-driven fracture propagation in rocks; 3.2 Coupling in reservoir geomechanics; 3.3 Fracture-matrix fluid exchange ("leakoff") 3.4 Coupling fluid and solid3.5 Coupling proppant transport and placement; 3.6 Thermal coupling; 3.7 Coupling in acid fracturing; 3.8 Conclusion; References; 4 Stress-induced permeability evolutions and erosion damage of porous rocks; 4.1 Introduction; 4.2 Laboratory tests; 4.2.1 Steady and transient permeability tests of sandstone under triaxial compression; 4.2.1.1 Steady permeability tests; 4.2.1.2 Transient pulse tests; 4.2.2 Hydro-mechanical-chemical coupling behavior of sandstone; 4.2.2.1 Creep tests with injection of CO2 alone and CO2-brine solution Creep tests with injection of CO2 aloneCreep tests with injection of CO2-brine; 4.2.2.2 Indentation tests on samples after CO2-brine-rock reaction; 4.3 Numerical simulations of hydro-mechanical-chemical coupling behavior; 4.3.1 General framework; 4.3.2 Special model for sandstone; 4.3.2.1 Mechanical modeling; 4.3.2.2 Mass-transfer modeling; 4.3.2.3 Porosity evolution and chemical damage; 4.3.2.4 Poromechanical modeling; 4.3.3 Numerical application; 4.3.3.1 Simulation of chemical dissolution process; 4.3.3.2 Simulation of mechanical behavior Front Cover; Porous Rock Fracture Mechanics; Copyright Page; Dedication; Contents; List of contributors; Preface; Introduction; Rocks fracture mechanics; Scale effects on fracture behavior; Effect of tensile and compressive stress fields on rocks' fracture mechanics; Rock fracture mechanisms and fluid effects; Environmental effects; Time effect on rocks' failure behavior; I. Introduction; 1 Application of rock failure simulation in design optimization of the hydraulic fracturing; 1.1 Introduction; 1.2 Reservoir stimulation by hydraulic fracturing of horizontal wells Includes index. - Online resource; title from PDF title page (EBSCO, viewed May 31, 2017) |
abstract_unstemmed |
1.3 Hydraulic fracturing conceptual models1.3.1 Rock failure and the stimulated volume; 1.4 Mechanical interactions of multiple hydraulic fractures; 1.4.1 Some insights on hydraulic fracture spacing optimization using numerical simulations; 1.4.2 The role of rock fabric and structure; 1.4.2.1 Role of rock anisotropy; 1.4.2.2 Influence of natural fractures on hydraulic fractures; 1.4.3 The importance of 3D effects; 1.5 Conclusions; References; II. Coupled Fluid Structural Deformation and Fracture Mechanisms in Porous 2 Anisotropic poroplasticity in saturated porous media, effect of confining pressure, and elevated temperature2.1 Introduction; 2.2 General framework of poroplastic modeling; 2.2.1 Effective stress concept in poroplasticity; 2.3 Experimental investigation on a typical porous rock; 2.4 Anisotropic plastic behavior of rocks; 2.5 Effects of temperature on anisotropic rocks; 2.6 Conclusions; References; 3 Coupling in hydraulic fracturing simulation; 3.1 Introduction: fluid-driven fracture propagation in rocks; 3.2 Coupling in reservoir geomechanics; 3.3 Fracture-matrix fluid exchange ("leakoff") 3.4 Coupling fluid and solid3.5 Coupling proppant transport and placement; 3.6 Thermal coupling; 3.7 Coupling in acid fracturing; 3.8 Conclusion; References; 4 Stress-induced permeability evolutions and erosion damage of porous rocks; 4.1 Introduction; 4.2 Laboratory tests; 4.2.1 Steady and transient permeability tests of sandstone under triaxial compression; 4.2.1.1 Steady permeability tests; 4.2.1.2 Transient pulse tests; 4.2.2 Hydro-mechanical-chemical coupling behavior of sandstone; 4.2.2.1 Creep tests with injection of CO2 alone and CO2-brine solution Creep tests with injection of CO2 aloneCreep tests with injection of CO2-brine; 4.2.2.2 Indentation tests on samples after CO2-brine-rock reaction; 4.3 Numerical simulations of hydro-mechanical-chemical coupling behavior; 4.3.1 General framework; 4.3.2 Special model for sandstone; 4.3.2.1 Mechanical modeling; 4.3.2.2 Mass-transfer modeling; 4.3.2.3 Porosity evolution and chemical damage; 4.3.2.4 Poromechanical modeling; 4.3.3 Numerical application; 4.3.3.1 Simulation of chemical dissolution process; 4.3.3.2 Simulation of mechanical behavior Front Cover; Porous Rock Fracture Mechanics; Copyright Page; Dedication; Contents; List of contributors; Preface; Introduction; Rocks fracture mechanics; Scale effects on fracture behavior; Effect of tensile and compressive stress fields on rocks' fracture mechanics; Rock fracture mechanisms and fluid effects; Environmental effects; Time effect on rocks' failure behavior; I. Introduction; 1 Application of rock failure simulation in design optimization of the hydraulic fracturing; 1.1 Introduction; 1.2 Reservoir stimulation by hydraulic fracturing of horizontal wells Includes index. - Online resource; title from PDF title page (EBSCO, viewed May 31, 2017) |
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List of contributors p. xi Preface p. xiii Introduction p. xv Introduction … Application of rock failure simulation in design optimization of the hydraulic fracturing … Introduction … Reservoir stimulation by hydraulic fracturing of horizontal wells … Hydraulic fracturing conceptual models … Mechanical interactions of multiple hydraulic fractures … Conclusions … References … Coupled Fluid Structural Deformation and Fracture Mechanisms in Porous … Anisotropic poroplasticity in saturated porous media, effect of confining pressure, and elevated temperature … Introduction … General framework of poroplastic modeling … Experimental investigation on a typical porous rock … Anisotropic plastic behavior of rocks … Effects of temperature on anisotropic rocks … Conclusions … References … Coupling in hydraulic fracturing simulation … Introduction: fluid-driven fracture propagation in rocks … Coupling in reservoir geomechanics … Fracture-matrix fluid exchange ("leakoff") … Coupling fluid and solid … Coupling proppant transport and placement … Thermal coupling … Coupling in acid fracturing … Conclusion … References … Stress-induced permeability evolutions and erosion damage of porous rocks … Introduction … Laboratory tests … Numerical simulations of hydro-mechanical-chemical coupling behavior … Conclusions and perspectives … References … Hydraulic fracture growth in naturally fractured rock … Introduction … Interaction and crossing … Observations and experiments … Analysis of HF-NF interaction … Numerical modeling of HF-NF interaction … Future directions … References … Progressive Fracture … Cohesive zone models … Introduction … Hydraulic fracturing … Model geometry and input data … Results and discussion … Conclusions … Acknowledgment … References … Application of discrete element approach in fractured rock masses … Introduction … Main features of discrete element approach … Particle-based DEM for rock fractures and matrix … Discrete element method for fracture networks … Summary remarks … Acknowledgments … References … The embedded finite element method (E-FEM) for multicracking of quasi-brittle materials … Introduction … Overview of the E-FEM … Application to induced fracture networks around drifts after an excavation in claystone … Application to 3D multicracking: induced fracture networks around drifts after an excavation in claystone … Conclusions … References … Application of continuum damage mechanics in hydraulic fracturing simulations … Introduction … Simulation techniques and hydraulic fracturing design … The drained and/or undrained conditions can be studied … Thermodynamic principles and continuum damage mechanics … Simulation results … Concluding remarks … References … Advanced Topics and Future Prospects … Multiscale modeling approaches and micromechanics of porous rocks … Introduction … Principle of the limit analysis method … Macroscopic criterion of double porous rock … Formulation of a nonassociated elastoplastic model for double porous material … Application to a typical porous rock … Concluding remark … References … Dynamic fracture mechanics in rocks with application to drilling and perforation … Introduction … Kinematics of elastic and inelastic deformations in porous rocks … Equation of state … Low-to-high strain rate constitutive modeling … Mean stress effect on the strength of rock and mechanical properties … Dynamic fracture prediction techniques in continuum mechanics context … Failure modes associated with dynamic problems … Constitutive relations for microcracks and microvoids … Numerical implementation, results, and discussions … Conclusion … References … Stability, accuracy, and efficiency of numerical methods for coupled fluid flow in porous rocks … Introduction/Framework … Numerical modeling of continuous media applied to rocks … Numerical modeling of fractured rocks … Conclusions and prospects … References … True triaxial failure stress and failure plane of two porous sandstones subjected to two distinct loading paths … Introduction … Materials … True triaxial experiment procedures … True triaxial failure under common loading path … True triaxial failure under novel loading path … Prediction of failure-plane angle via bifurcation theory … Concluding remarks … Acknowledgments … References … Index … |
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Shojaei, Jianfu Shao</subfield></datafield><datafield tag="264" ind1=" " ind2="1"><subfield code="a">Cambridge, MA</subfield><subfield code="b">Woodhead Publishing is an imprint of Elsevier</subfield><subfield code="c">2017</subfield></datafield><datafield tag="300" ind1=" " ind2=" "><subfield code="a">Online Ressource</subfield></datafield><datafield tag="336" ind1=" " ind2=" "><subfield code="a">nicht spezifiziert</subfield><subfield code="b">zzz</subfield><subfield code="2">rdacontent</subfield></datafield><datafield tag="337" ind1=" " ind2=" "><subfield code="a">nicht spezifiziert</subfield><subfield code="b">z</subfield><subfield code="2">rdamedia</subfield></datafield><datafield tag="338" ind1=" " ind2=" "><subfield code="a">nicht spezifiziert</subfield><subfield code="b">zu</subfield><subfield code="2">rdacarrier</subfield></datafield><datafield tag="490" ind1="0" ind2=" "><subfield code="a">Woodhead Publishing series in civil and structural engineering</subfield></datafield><datafield tag="500" ind1=" " ind2=" "><subfield code="a">Includes index. - Online resource; title from PDF title page (EBSCO, viewed May 31, 2017)</subfield></datafield><datafield tag="520" ind1=" " ind2=" "><subfield code="a">1.3 Hydraulic fracturing conceptual models1.3.1 Rock failure and the stimulated volume; 1.4 Mechanical interactions of multiple hydraulic fractures; 1.4.1 Some insights on hydraulic fracture spacing optimization using numerical simulations; 1.4.2 The role of rock fabric and structure; 1.4.2.1 Role of rock anisotropy; 1.4.2.2 Influence of natural fractures on hydraulic fractures; 1.4.3 The importance of 3D effects; 1.5 Conclusions; References; II. 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