Development of a Novel Dynamic Wellbore Fracturing Technology by Integrating Full-Scale Experimental Testing and FDEM Numerical Simulations.
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| Title: | Development of a Novel Dynamic Wellbore Fracturing Technology by Integrating Full-Scale Experimental Testing and FDEM Numerical Simulations. |
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| Authors: | Lisjak, Andrea1 (AUTHOR) andrea.lisjak@geomechanica.com, Hinkey, John2 (AUTHOR), Andersen, Jacob2 (AUTHOR), Mahabadi, Omid1 (AUTHOR), Detournay, Emmanuel3 (AUTHOR), Araujo, Ewerton4,5 (AUTHOR), Rimmelin, Rigoberto6 (AUTHOR) |
| Source: | Rock Mechanics & Rock Engineering. May2026, Vol. 59 Issue 5, p5607-5638. 32p. |
| Subject Terms: | *Combustion engineering, *Crack propagation, *Empirical research, *Rock deformation, *Hydrocarbon reservoirs, *Computer simulation, *Geothermal engineering |
| Abstract: | The goal of this paper is to provide an overview of the development of a novel pulsed combustion-based wellbore fracturing technology by reporting on 2D and 3D dynamic fracture modeling along with the associated full wellbore scale experimental demonstration fracturing of a high-strength concrete formation surrogate. With this technique a high pressure, gaseous mixture is rapidly combusted to produce repetitive, controllable wellbore strain rates that can induce complex fracture patterns around the wellbore. The technology can be used as a pre-conditioning and stimulation tool for in situ recovery and cave mining, enhanced geothermal systems, and unconventional hydrocarbon reservoirs. As part of this study, full-scale experimental testing on a rock-like material was conducted together with advanced numerical simulations based on the finite-discrete element method (FDEM). FDEM is a numerical approach capable of explicit consideration of rock fracturing processes and dynamic phenomena. Experimental results indicate that the fracturing tool can successfully apply a circumferentially and axially uniform high pressurization rate pulse to the wellbore, ultimately producing a complex fracture network. These results were also used to validate 3D numerical simulations, which showed good overall qualitative agreement in terms of fracturing modes and extent, as well as fragment size and shape. A 2D numerical parametric study on the effect of borehole pressurization characteristics, including gas-in-fractures effects, and geostatic confinement highlighted the influence of these factors on fracture complexity and radial extent. An in-depth analysis of the extent of the crushed zone and radial distributions of fracture specific surface area was carried out. Borehole pair configurations were simulated to gain insights into borehole spacing and loading sequence effects. Highlights: A novel pulsed combustion-based wellbore fracturing technology aims to overcome some of the limitations of conventional stimulation techniques. This novel technology is capable of various characteristic fracture network outcomes and fracturing radial extent/distance utilizing a range of tailored pressure pulse profiles. Full-scale experimental test results show generation of complex fracture networks and heavy fragmentation. The simulation approach is validated by a qualitative comparison of numerically generated fracture patterns with experimental results. Further numerical results highlight the effect of borehole pressurization characteristics and geostatic confinement on fracture complexity and radial extent. [ABSTRACT FROM AUTHOR] |
| Database: | Energy & Power Source |
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| Header | DbId: enr DbLabel: Energy & Power Source An: 194004653 AccessLevel: 6 PubType: Academic Journal PubTypeId: academicJournal PreciseRelevancyScore: 0 |
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| Items | – Name: Title Label: Title Group: Ti Data: Development of a Novel Dynamic Wellbore Fracturing Technology by Integrating Full-Scale Experimental Testing and FDEM Numerical Simulations. – Name: Author Label: Authors Group: Au Data: <searchLink fieldCode="AR" term="%22Lisjak%2C+Andrea%22">Lisjak, Andrea</searchLink><relatesTo>1</relatesTo> (AUTHOR)<i> andrea.lisjak@geomechanica.com</i><br /><searchLink fieldCode="AR" term="%22Hinkey%2C+John%22">Hinkey, John</searchLink><relatesTo>2</relatesTo> (AUTHOR)<br /><searchLink fieldCode="AR" term="%22Andersen%2C+Jacob%22">Andersen, Jacob</searchLink><relatesTo>2</relatesTo> (AUTHOR)<br /><searchLink fieldCode="AR" term="%22Mahabadi%2C+Omid%22">Mahabadi, Omid</searchLink><relatesTo>1</relatesTo> (AUTHOR)<br /><searchLink fieldCode="AR" term="%22Detournay%2C+Emmanuel%22">Detournay, Emmanuel</searchLink><relatesTo>3</relatesTo> (AUTHOR)<br /><searchLink fieldCode="AR" term="%22Araujo%2C+Ewerton%22">Araujo, Ewerton</searchLink><relatesTo>4,5</relatesTo> (AUTHOR)<br /><searchLink fieldCode="AR" term="%22Rimmelin%2C+Rigoberto%22">Rimmelin, Rigoberto</searchLink><relatesTo>6</relatesTo> (AUTHOR) – Name: TitleSource Label: Source Group: Src Data: <searchLink fieldCode="JN" term="%22Rock+Mechanics+%26+Rock+Engineering%22">Rock Mechanics & Rock Engineering</searchLink>. May2026, Vol. 59 Issue 5, p5607-5638. 32p. – Name: Subject Label: Subject Terms Group: Su Data: *<searchLink fieldCode="DE" term="%22Combustion+engineering%22">Combustion engineering</searchLink><br />*<searchLink fieldCode="DE" term="%22Crack+propagation%22">Crack propagation</searchLink><br />*<searchLink fieldCode="DE" term="%22Empirical+research%22">Empirical research</searchLink><br />*<searchLink fieldCode="DE" term="%22Rock+deformation%22">Rock deformation</searchLink><br />*<searchLink fieldCode="DE" term="%22Hydrocarbon+reservoirs%22">Hydrocarbon reservoirs</searchLink><br />*<searchLink fieldCode="DE" term="%22Computer+simulation%22">Computer simulation</searchLink><br />*<searchLink fieldCode="DE" term="%22Geothermal+engineering%22">Geothermal engineering</searchLink> – Name: Abstract Label: Abstract Group: Ab Data: The goal of this paper is to provide an overview of the development of a novel pulsed combustion-based wellbore fracturing technology by reporting on 2D and 3D dynamic fracture modeling along with the associated full wellbore scale experimental demonstration fracturing of a high-strength concrete formation surrogate. With this technique a high pressure, gaseous mixture is rapidly combusted to produce repetitive, controllable wellbore strain rates that can induce complex fracture patterns around the wellbore. The technology can be used as a pre-conditioning and stimulation tool for in situ recovery and cave mining, enhanced geothermal systems, and unconventional hydrocarbon reservoirs. As part of this study, full-scale experimental testing on a rock-like material was conducted together with advanced numerical simulations based on the finite-discrete element method (FDEM). FDEM is a numerical approach capable of explicit consideration of rock fracturing processes and dynamic phenomena. Experimental results indicate that the fracturing tool can successfully apply a circumferentially and axially uniform high pressurization rate pulse to the wellbore, ultimately producing a complex fracture network. These results were also used to validate 3D numerical simulations, which showed good overall qualitative agreement in terms of fracturing modes and extent, as well as fragment size and shape. A 2D numerical parametric study on the effect of borehole pressurization characteristics, including gas-in-fractures effects, and geostatic confinement highlighted the influence of these factors on fracture complexity and radial extent. An in-depth analysis of the extent of the crushed zone and radial distributions of fracture specific surface area was carried out. Borehole pair configurations were simulated to gain insights into borehole spacing and loading sequence effects. Highlights: A novel pulsed combustion-based wellbore fracturing technology aims to overcome some of the limitations of conventional stimulation techniques. This novel technology is capable of various characteristic fracture network outcomes and fracturing radial extent/distance utilizing a range of tailored pressure pulse profiles. Full-scale experimental test results show generation of complex fracture networks and heavy fragmentation. The simulation approach is validated by a qualitative comparison of numerically generated fracture patterns with experimental results. Further numerical results highlight the effect of borehole pressurization characteristics and geostatic confinement on fracture complexity and radial extent. [ABSTRACT FROM AUTHOR] |
| PLink | https://search.ebscohost.com/login.aspx?direct=true&site=eds-live&db=enr&AN=194004653 |
| RecordInfo | BibRecord: BibEntity: Identifiers: – Type: doi Value: 10.1007/s00603-024-04026-x Languages: – Code: eng Text: English PhysicalDescription: Pagination: PageCount: 32 StartPage: 5607 Subjects: – SubjectFull: Combustion engineering Type: general – SubjectFull: Crack propagation Type: general – SubjectFull: Empirical research Type: general – SubjectFull: Rock deformation Type: general – SubjectFull: Hydrocarbon reservoirs Type: general – SubjectFull: Computer simulation Type: general – SubjectFull: Geothermal engineering Type: general Titles: – TitleFull: Development of a Novel Dynamic Wellbore Fracturing Technology by Integrating Full-Scale Experimental Testing and FDEM Numerical Simulations. Type: main BibRelationships: HasContributorRelationships: – PersonEntity: Name: NameFull: Lisjak, Andrea – PersonEntity: Name: NameFull: Hinkey, John – PersonEntity: Name: NameFull: Andersen, Jacob – PersonEntity: Name: NameFull: Mahabadi, Omid – PersonEntity: Name: NameFull: Detournay, Emmanuel – PersonEntity: Name: NameFull: Araujo, Ewerton – PersonEntity: Name: NameFull: Rimmelin, Rigoberto IsPartOfRelationships: – BibEntity: Dates: – D: 01 M: 05 Text: May2026 Type: published Y: 2026 Identifiers: – Type: issn-print Value: 07232632 Numbering: – Type: volume Value: 59 – Type: issue Value: 5 Titles: – TitleFull: Rock Mechanics & Rock Engineering Type: main |
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