Fluid Flows with Complex Interfaces: Modelling and Simulation from Pore to Pipe

Research output: Book/ReportPh.D. thesisResearch

Standard

Fluid Flows with Complex Interfaces : Modelling and Simulation from Pore to Pipe. / Linga, Gaute.

The Niels Bohr Institute, Faculty of Science, University of Copenhagen, 2018.

Research output: Book/ReportPh.D. thesisResearch

Harvard

Linga, G 2018, Fluid Flows with Complex Interfaces: Modelling and Simulation from Pore to Pipe. The Niels Bohr Institute, Faculty of Science, University of Copenhagen. <https://soeg.kb.dk/permalink/45KBDK_KGL/fbp0ps/alma99122468519405763>

APA

Linga, G. (2018). Fluid Flows with Complex Interfaces: Modelling and Simulation from Pore to Pipe. The Niels Bohr Institute, Faculty of Science, University of Copenhagen. https://soeg.kb.dk/permalink/45KBDK_KGL/fbp0ps/alma99122468519405763

Vancouver

Linga G. Fluid Flows with Complex Interfaces: Modelling and Simulation from Pore to Pipe. The Niels Bohr Institute, Faculty of Science, University of Copenhagen, 2018.

Author

Linga, Gaute. / Fluid Flows with Complex Interfaces : Modelling and Simulation from Pore to Pipe. The Niels Bohr Institute, Faculty of Science, University of Copenhagen, 2018.

Bibtex

@phdthesis{7c7db9703c154a62bee0561f93b16cb5,
title = "Fluid Flows with Complex Interfaces: Modelling and Simulation from Pore to Pipe",
abstract = "In this thesis, aspects of fluid flowwith disordered interfaces are investigated by numerical and theoretical means, and their relations to geophysically relevant systems are discussed. The research output consists of physical models, numerical methods and tools, and applications of the models and methods to problems ranging from the pore to the pipe scale.A part of the work focuses on single-phase fluid flow. In order to address the universality class of the laminar–turbulent transition in pipe flow, particle-based models for the interaction between turbulent domains are introduced. To illuminate the joint effects of a disordered geometry and fluid inertia on macroscopic transport properties, transitional flow in rough fractures is investigated by direct numerical simulations. In the limit of creeping flow, the coupling between flow and stress in dissolving porous rock is studied. The remainder of the work concerns flows where the effects of a second phase, chemical transport, and electric fields, are included. Models for such electrohydrodynamic and two-phase flows are analysed herein. Furthermore, efficient numerical methods are developed both for single- and two-phase electrohydrodynamic flow, and a simulation framework, based on a diffuse-interface model, is introduced to facilitate simulation of phenomena including wetting at the pore scale and microfluidic devices.",
author = "Gaute Linga",
year = "2018",
language = "English",
publisher = "The Niels Bohr Institute, Faculty of Science, University of Copenhagen",

}

RIS

TY - BOOK

T1 - Fluid Flows with Complex Interfaces

T2 - Modelling and Simulation from Pore to Pipe

AU - Linga, Gaute

PY - 2018

Y1 - 2018

N2 - In this thesis, aspects of fluid flowwith disordered interfaces are investigated by numerical and theoretical means, and their relations to geophysically relevant systems are discussed. The research output consists of physical models, numerical methods and tools, and applications of the models and methods to problems ranging from the pore to the pipe scale.A part of the work focuses on single-phase fluid flow. In order to address the universality class of the laminar–turbulent transition in pipe flow, particle-based models for the interaction between turbulent domains are introduced. To illuminate the joint effects of a disordered geometry and fluid inertia on macroscopic transport properties, transitional flow in rough fractures is investigated by direct numerical simulations. In the limit of creeping flow, the coupling between flow and stress in dissolving porous rock is studied. The remainder of the work concerns flows where the effects of a second phase, chemical transport, and electric fields, are included. Models for such electrohydrodynamic and two-phase flows are analysed herein. Furthermore, efficient numerical methods are developed both for single- and two-phase electrohydrodynamic flow, and a simulation framework, based on a diffuse-interface model, is introduced to facilitate simulation of phenomena including wetting at the pore scale and microfluidic devices.

AB - In this thesis, aspects of fluid flowwith disordered interfaces are investigated by numerical and theoretical means, and their relations to geophysically relevant systems are discussed. The research output consists of physical models, numerical methods and tools, and applications of the models and methods to problems ranging from the pore to the pipe scale.A part of the work focuses on single-phase fluid flow. In order to address the universality class of the laminar–turbulent transition in pipe flow, particle-based models for the interaction between turbulent domains are introduced. To illuminate the joint effects of a disordered geometry and fluid inertia on macroscopic transport properties, transitional flow in rough fractures is investigated by direct numerical simulations. In the limit of creeping flow, the coupling between flow and stress in dissolving porous rock is studied. The remainder of the work concerns flows where the effects of a second phase, chemical transport, and electric fields, are included. Models for such electrohydrodynamic and two-phase flows are analysed herein. Furthermore, efficient numerical methods are developed both for single- and two-phase electrohydrodynamic flow, and a simulation framework, based on a diffuse-interface model, is introduced to facilitate simulation of phenomena including wetting at the pore scale and microfluidic devices.

UR - https://soeg.kb.dk/permalink/45KBDK_KGL/fbp0ps/alma99122468519405763

M3 - Ph.D. thesis

BT - Fluid Flows with Complex Interfaces

PB - The Niels Bohr Institute, Faculty of Science, University of Copenhagen

ER -

ID: 208750116