Presenter: Ahmed Ahed Al-Ratrout Supervisors: Prof. Martin J. Blunt

Slides:



Advertisements
Similar presentations
Impact of capillary trapping on geological CO2 storage
Advertisements

Simulation of single phase reactive transport on pore-scale images Zaki Al Nahari, Branko Bijeljic, Martin Blunt.
Modelling Rate Effects in Imbibition
Normal text - click to edit NMR T2 Relaxation for Fluid Saturation and Wettability Determination G. ERSLAND IRTG, Oct. 16 th, 2012.
Qatar Carbonates and Carbon Storage Research Centre 1 Dynamic Imaging of Reaction at Reservoir Conditions, Considering the Influence of Chemical Heterogeneity.
Pore-Scale Analysis of WAG Flooding V. Sander Suicmez Dr. Mohammad Piri Prof. Martin J. Blunt 5 Jan 2005 Centre for Petroleum Studies Department of Earth.
Branko Bijeljic, Ali Raeini, Peyman Mostaghimi and Martin Blunt What Determines Transport Behaviour in Different Porous Media? Dept. of Earth Science and.
Zaki Al Nahari, Branko Bijeljic, Martin Blunt
Pore-scale modelling of carbonates 1 Hiroshi Okabe Petroleum Engineering and Rock Mechanics Research Group Department of Earth Science and Engineering.
Multipoint Statistics to Generate Geologically Realistic Networks 1 Hiroshi Okabe supervised by Prof. Martin J Blunt Petroleum Engineering and Rock Mechanics.
Data Mining & Oil-Field Modeling Y.Chang. Outline Background Reservoir Simulation Modeling Examples and Projects.
Pore-to-Field Upscaling of Immiscible Two-Phase Flow Hasan Nooruddin Martin Blunt Jan 2015.
João Paulo Pereira Nunes
Imperial College Consortium on Pore-Scale Modelling Annual Review 11 th January 2013 Martin Blunt Department of Earth Science and Engineering Imperial.
Peyman Mostaghimi, Prof. Martin Blunt, Dr. Branko Bijeljic 16 January 2009, Imperial College Consortium on Pore-Scale Modelling The level set method and.
Boundary Tension and Wettability. Immiscible Phases Earlier discussions have considered only a single fluid in the pores –porosity –permeability Saturation:
Department of Earth Science and Engineering Imperial College Consortium on Pore-scale Modelling Ali Raeini, Branko Bijeljic and Martin Blunt.
Finite-Element-Based Characterisation of Pore- scale Geometry and its Impact on Fluid Flow Lateef Akanji Supervisors Prof. Martin Blunt Prof. Stephan Matthai.
Paper Discussion: “Simultaneous Localization and Environmental Mapping with a Sensor Network”, Marinakis et. al. ICRA 2011.
Peyman Mostaghimi, Martin Blunt, Branko Bijeljic 11 th January 2010, Pore-scale project meeting Direct Numerical Simulation of Transport Phenomena on Pore-space.
Dr. Mohammed M. Amro Petroleum Engineering Dept. King Saud University Effect of Scale and Corrosion Inhibitors on Well Productivity in Reservoirs Containing.
Stefan Iglauer, Saleh K Al-Mansoori, Christopher H Pentland, Branko Bijeljic, Martin J Blunt 2 Phase Measurement of Non-Wetting Phase Trapping.
From pore-space images to multiphase transport predictions
Predictive Pore-Scale Modelling
Saudi Aramco: Company General Use Testing the Predictive Value of Image-Based Computation of Relative Permeability Yildiray CINAR The 2 nd KFUPM workshop.
Vivek Muralidharan Simulation and imaging experiments of fluid flow through a fracture surface: a new perspective.
Introduction to Effective Permeability and Relative Permeability
3D Images of residual oil in an Ottawa sand Congjiao Xie, Saif Ai-Sayari and Martin Blunt Earth Science and Engineering, Imperial College London.
The Effect of Wettability on Relative Permeability, Capillary Pressure, Electrical Resistivity and NMR Saif AL-Sayari Prof. Martin Blunt.
Pore-Scale Analysis of WAG & Development of a New Empirical Model
Imperial College, PETROLEUM ENGINEERING AND ROCK MECHANICS GROUP 10 th January 2003 PETROLEUM ENGINEERING AND ROCK MECHANICS GROUP Pore Scale Modeling.
Statistical analysis of pore space geometry Stefano Favretto Supervisor : Prof. Martin Blunt Petroleum Engineering and Rock Mechanics Research Group Department.
Annual Review 13th January 2014
In the name of God Three-Phase Flow in Mixed-Wet Porous Media Mohammad Piri Prof. Martin Blunt Petroleum Eng. and Rock Mechanics (PERM) Research Group.
Classification: Internal Status: Draft Low Salinity Waterflooding: Opportunities and Challenges for Field Pilot Tests Dagmar Spangenberg, Peimao Zhang.
Use of PP and PS time-lapse stacks for fluid-pressure discrimination. ALEXEY STOVAS 1, MARTIN LANDRØ 1 & BØRGE ARNTSEN 2 1 NTNU, Dept. of Petroleum Engineering.
A level set method for fluid displacement in realistic porous media
Pore-Scale Analysis of Oil Shale: Planned Research
Prediction of wettability variation and its impact on flow using pore- to reservoir-scale simulations Matthew Jackson, Per Valvatne and Martin Blunt Centre.
In the name of God Pore-Scale Modeling of Three-Phase Flow in Mixed-Wet Systems Mohammad Piri Martin Blunt Centre for Petroleum Studies Department of Earth.
Dr. Branko Bijeljic Dr. Ann Muggeridge Prof. Martin Blunt Diffusion and Dispersion in Networks Dept. of Earth Science and Engineering, Imperial College,
Pore-Scale Model for Rate Dependence of Two-Phase Flow in Porous Media Mohammed Al-Gharbi Supervisor: Prof. Martin Blunt.
1 Pore-Scale Simulation of NMR Response in Porous Media Olumide Talabi Supervisor: Prof Martin Blunt Contributors: Saif AlSayari, Stefan Iglauer, Saleh.
Ran Qi, Valcir T Beraldo, Tara C LaForce, Martin J Blunt Design of CO 2 storage in aquifers 17 th Jan Imperial College Consortium on Pore-Scale Modelling.
Computational Modeling of Carbon Dioxide in Saline Reservoirs Caitlin M. Augustin Peter K. Swart Timothy H. Dixon Augustin et al., 2010.
Segmentation of Tree like Structures as Minimisation Problem applied to Lung Vasculature Pieter Bruyninckx.
11 Imperial College Consortium on Pore-Scale Modelling Martin Blunt Department of Earth Science and Engineering.
Christopher H Pentland, Stefan Iglauer, Yukie Tanino, Rehab El-Magrahby, Saleh K Al Mansoori, Puneet Sharma, Endurance Itsekiri, Paul Gittins, Branko Bijeljic,
Imperial College Consortium on Pore-Scale Modelling Annual Review 12 th January 2015 Martin Blunt Department of Earth Science and Engineering Imperial.
Proposal for estimation of surface water bodies background levels for selected metals Slovak Republic.
Research Institute of Petroleum Industry
What Determines Transport Behaviour in Different Porous Media?
Annual Review 11th January 2015
Imperial College, London Pore Scale Modelling: Pore - to - Reservoir Upscaling Project Plans by IDOWU N. A.
Direct simulation of multiphase flow on pore-space images
11 Imperial College Consortium on Pore-Scale Modelling Martin Blunt Department of Earth Science and Engineering.
In situ Measurements of Contact Angle Distribution From Multiphase Micro-CT Images Presenter: Ahmed Ahed Al-Ratrout Supervisors: Prof. Martin J. Blunt.
제목 : 미국 Sandia National Laboratory, Geomechanics Department 및 연구 동향 소개 연사 : Dr. Moo Lee Sandia National Laboratory 제목 : Shale Poromechanics, Hydraulic.
Computational Fluid Dynamics P AVEL P ETRUNEAC B ACHELOR OF S CIENCE D ISSERTATION R ENEWABLE E NERGY OF TURBULENCE EFFECTS ON THE SEABED Supervisor(s):
Note for the DL Committee:
Capillary End Effects during Core Flooding – Analytical Solutions and Capillary Numbers accounting for Saturation Functions Pål Østebø Andersen, Postdoc.
Brooks-Corey MICP Model Parameters Determination
Hasan Nourdeen Martin Blunt 10 Jan 2017
PETROLEUM ENGINEERING AND ROCK MECHANICS GROUP
Wettability in reservoir engineering.
Predicting NMR Response in Micro-CT images and Networks
Date of download: 11/15/2017 Copyright © ASME. All rights reserved.
Enhanced Oil Recovery by Nitrogen and Carbon Dioxide Injection Followed by Low Salinity Water Flooding in Tight Carbonate Reservoir: A Laboratory Study.
Introduction to Effective Permeability and Relative Permeability
Project Title: (Your project title here)
Presentation transcript:

In situ Measurements of Contact Angle and implications fro pore-scale displacement Presenter: Ahmed Ahed Al-Ratrout Supervisors: Prof. Martin J. Blunt Dr. Branko Bijeljic

Outline Introduction Background and Literature review Objectives Work Flow Contact line and surface extraction Smoothing the extracted surfaces Research Milestones Research Gant chart Slide 2 2

Outline Introduction Background and Literature review Objectives Work Flow Contact line and surface extraction Smoothing the extracted surfaces Research Milestones Research Gant chart Slide 3 3

How to measure wettability? How to map wettability? Introduction Water-wet Oil-wet Contact line How to measure wettability? How to map wettability? Although, wettability of particular RRT may be quantified in the laboratory through the use of indices, such as Amot-Index and USBM, or by using relative permeability characteristics. It is, fundamentally, well known that wettability is described in terms of contact angle measurements more accurately. Conventionally, laboratory contact angle measurements are applied using flat singular mineral surfaces, typically silica and/or quartz and calcite to symbolize sandstones and carbonates, respectively. The fact that reservoir rocks contains other minerals and rough surfaces, which causes changes in wettability preferences and contact angle hysteresis, respectively. Therefore, these measurements may not be accurate to represent the operative contact angle and actual wettability within reservoir rocks. Measure θ at each invaded pore at every voxel point on contact line? Slide 4 4

Outline Introduction Background and Literature review Objectives Work Flow Contact line and surface extraction Smoothing the extracted surfaces Research Milestones Research Gant chart Slide 5 5

Background and Literature review In the past 3 decades, different definitions of wettability and contact angle measurements have been proposed and applied in the literature: Brown & Fatt Amot Morrow Donaldson (USBM) (1956) (1975) (1959) (1969, 1980 & 1981) Adamson Neumann / Good (1982) (1979) Most of these approaches were applied on singular mineral flat surfaces, or had big uncertainties! Slide 6 6

Outline Introduction Background and Literature review Objectives Work Flow Contact line and surface extraction Smoothing the extracted surfaces Research Milestones Research Gant chart Slide 7 7

Objectives Develop a method to measure contact angle (θ) in Oil/Brine system. As more accuracy, this computational process outputs a list of θ values (range), that corresponds to each invaded pore-elements (pores and throats). The list of computed angles at each invaded pore-element, rather than single value for the whole 3D-image, are implemented as an input to perform pore-network 2-phase flow simulation. For the studied Kr experiments (which can represent accuracy level and extrapolation interval reliability). with USS Kr saturation working span conditions USS Kr profiles will be generated to judge if OPCOs should go for USS or SS for different rock types & reservoir fluids.

Outline Introduction Background and Literature review Objectives Work Flow Contact line and surface extraction Smoothing the extracted surfaces Research Milestones Research Gant chart Slide 9 9

Workflow Rock Oil Water Rock Contact Line Interface Oil n|w θ θ Water Contact line -Solid Rock Slide 10

Outline Introduction Background and Literature review Objectives Work Flow Contact line and surface extraction Smoothing the extracted surfaces Research Milestones Research Gant chart Slide 11 11

Contact line and surface extraction In order to estimate nw and n|w, we need to extracting from the segmented image the following: Contact lines Oil/brine interface Solid surface Aliasing issue! Due to roughness of the rock surface and voxel representation of the 3D image, aliasing artifacts ((jagginess and terracing) can be exhibited during the extraction of the isosurfaces and contact lines (Lempitsky, 2010). A). The binary volume and its zero-isoline. B) zer-isosurface of binary volume (Lempitsky, 2010). Slide 12

Outline Introduction Background and Literature review Objectives Work Flow Contact line and surface extraction Smoothing the extracted surfaces Research Milestones Research Gant chart Slide 13 13

Smoothing the extracted surfaces This aliasing problem distracts tracing the required two vectors along the solid wall of the rock and the oil-brine interface, which, may lead to incorrect angle measurements (Andrew et al., 2014). Gaussian pre-filtering Minimal area seperating surfaces (Gibson, 1998) Higher order smoothing method (Lempitsky, 2010) In this study, these methods are optimized in details to analyze the impact of extracting smooth surfaces on the roughness of rock surfaces and oil-brine interfaces Slide 14

Outline Introduction Background and Literature review Objectives Work Flow Contact line and surface extraction Smoothing the extracted surfaces Research Milestones Research Gant chart Slide 15 15

Research Millestones Literature review Data Gathering Phase I Phase II Data review and classification Phase I Code development using C++ Phase II Apply results in 2-phase simulation Sensitivity analysis Results Validation Final Report Slide 16

Research Gant chart Slide 17

References Adamson, A.W.., 1982. Physical Chemistry of Surfaces. fourth edition, pp.332-68. Amott, E., 1959. Observations Relating to the Wettability of Porous Rock. Trans., 216, pp.156-62. Anderson, W.G.(.I.)., 1986. Wettability Literature Survery - Part 1: Roc/Oil/Brine Interactions and the Effects of Core Handling on Wettability. Jornal of Petroleum Technology, 38(10), pp.1125 - 1144. DOI: http://dx.doi.org/10.2118/13932-PA. Anderson, W.G.(.I.)., 1986. Wettability Literature Survey - Part 2: Wettability Measurement. Journal of Petroleum Technologies, 38(11), pp.1246-62. DOI: http://dx.doi.org/10.2118/13933-PA. Andrew, M., Bijeljic, B. & Blunt, M.J., 2014. Pore-scale contact angle measurements at reservoir conditions using X-Ray microtomography. Advances in Water Resources, 68(2014), pp.24-31. Brown, R.J.S. & Fatt, I., 1956. Measurements of Fractional Wettability of Oil Field Rocks by Nuclear Magnetic Relaxation Method. JPT, 11, p.262. Donaldson, E.C. & al., e., 1980. Equipment and Procedures for Fluid Flow and Wettability Tests of Geological Materials. Bartlesville Energy Technology Center. report DOE/BETC/IC 79/5, U.S. DOE. Donaldson, E.C., Thomas, R.D. & Lorenz, P.B., 1969. Wettabili- ty Determination and Its Effect on Recovery Efficiency. SPE, pp.13-20. Fatt, I., 1956. The network model of porous media. Petroleum Transactions, 207, pp.144-81. Good, R.I., 1979. Contact Angles and the Surface Free Energy of Solids. Surface and Colloid Science, 11, pp.1-29. Morrow, N.R.., 1975. Effects of surface-roughness on contact angle with special reference to petroleum recovery. J. Can. Pet. Technol., 14(4), pp.42-53. Neumann, A.W.a.G.R.J., 1979. Techniques of Measuring Contact Angles. Surface and Colloid Science, 11, pp.31-91. Pak, T. et al., 2013. Pore-Scale Visualisation of Two-Phase Fluid Displacement Processes in a Carbonate Rock using X-ray micro-Tomography Technique. In RCSC. Abu Dhabi, 2013. SPE. Valvatne, P.H. & Blunt, M.J., 2004. Predictive pore-scale modeling of two-phase flow in mixed wet media. Water Resources Research, 40(2004), pp.1-21.

Acknowledgements / Thank You / Questions Acknowledgement to ADNOC and ADCO management for the sponsorship of this PhD program. Acknowledgment to the supervisors Prof. Martin and Dr. Branko Acknowledgment to Dr. Ali Raeini, Dr. Kamaljit Singh and Matthew Andrew for the valuable advices and guidances Your attendance and valuable questions Slide 19