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Numerical simulation of two-phase flow in discrete fractures using Rayleigh-Ritz finite element methodKaul, Sandeep P. 30 September 2004 (has links)
Spontaneous imbibition plays a very important role in the displacement mechanism of non-wetting fluid in naturally fractured reservoirs. We developed a new 2D two-phase finite element numerical model, as available commercial simulators cannot be used to model small-scale experiments with different boundary conditions as well as complex boundary conditions such as fractures and vugs. Starting with the basic equation of fluid flow, we derived the non-linear diffusion saturation equation. This equation cannot be put in weighted-integral weak variational form and hence Rayleigh-Ritz finite element method (FEM) cannot be applied. Traditionally, the way around it is to use higher order interpolation functions and use Galerkin FEM or reduce the differentiability requirement and use Mixed FEM formulation. Other FEM methods can also be used, but iterative nature of those methods makes them unsuitable for solving large-scale field problems. But if we truncate the non-linear terms and decouple the dependent variables, from the spatial as well as the temporal domains of the primary variable to solve them analytically, the non-linear FEM problem reduces to a simple weighted integral form, which can be put into its corresponding weak form. The advantage of using Rayleigh-Ritz method is that it has immediate effect on the computation time required to solve a particular problem apart from incorporating complex boundary conditions. We compared our numerical models with the analytical solution of this diffusion equation. We validated the FDM numerical model using X-Ray Tomography (CT) experimental data from the single-phase spontaneous imbibition experiment, where two simultaneously varying parameters of weight gain and CT water saturation were used and then went ahead and compared the results of FEM model to that of FDM model. A two-phase field size example was taken and results from a commercial simulator were compared to the FEM model to bring out the limitations of this approach.
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Neural network analysis of sparse datasets ?? an application to the fracture system in folds of the Lisburne Formation, northeastern AlaskaBui, Thang Dinh 01 November 2005 (has links)
Neural networks (NNs) are widely used to investigate the relationship among variables in complex multivariate problems. In cases of limited data, the network behavior strongly depends on factors such as the choice of network activation function and network initial weights. In this study, I investigated the use of neural networks for multivariate analysis in the case of limited data.
The analysis shows that special attention should be paid when building and using NNs in cases of limited data. The linear activation function at the output nodes outperforms the sigmoidal and Gaussian functions. I found that combining network predictions gives less biased predictions and allows for the assessment of the prediction variability.
The NN results, along with conventional statistical analysis, were used to examine the effects of folding, bed thickness, structural position, and lithology on the fracture properties distributions in the Lisburne Formation, folded and exposed in the northeastern Brooks Range of Alaska. Fracture data from five folds, representing different degrees of folding, were analyzed. In addition, I modeled the fracture system using the discrete fracture network approach and investigated the effects of fracture properties on the flow conductance of the system.
For the Lisburne data, two major fracture sets striking north/south and east/west were studied. Results of the NNs analysis suggest that fracture spacing in both sets is similar and weakly affected by folding and that stratigraphic position and lithology have a strong effect on fracture spacing. Folding, however, has a significant effect on fracture length. In open folds, fracture lengths in both sets have similar averages and variances. As the folds tighten, both the east/west and north/south fracture lengths increase by a factor of 2 or 3 and become more variable. In tight folds, fracture length in the north/south direction is significantly larger than in the east/west direction. The difference in length between the two fracture sets creates a strong anisotropy in the reservoir. Given the same fracture density in both sets, the set with the greater length plays an important role for fluid flow, not only for flow along its principal direction but also in the orthogonal direction.
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Numerical simulation of two-phase flow in discrete fractures using Rayleigh-Ritz finite element methodKaul, Sandeep P. 30 September 2004 (has links)
Spontaneous imbibition plays a very important role in the displacement mechanism of non-wetting fluid in naturally fractured reservoirs. We developed a new 2D two-phase finite element numerical model, as available commercial simulators cannot be used to model small-scale experiments with different boundary conditions as well as complex boundary conditions such as fractures and vugs. Starting with the basic equation of fluid flow, we derived the non-linear diffusion saturation equation. This equation cannot be put in weighted-integral weak variational form and hence Rayleigh-Ritz finite element method (FEM) cannot be applied. Traditionally, the way around it is to use higher order interpolation functions and use Galerkin FEM or reduce the differentiability requirement and use Mixed FEM formulation. Other FEM methods can also be used, but iterative nature of those methods makes them unsuitable for solving large-scale field problems. But if we truncate the non-linear terms and decouple the dependent variables, from the spatial as well as the temporal domains of the primary variable to solve them analytically, the non-linear FEM problem reduces to a simple weighted integral form, which can be put into its corresponding weak form. The advantage of using Rayleigh-Ritz method is that it has immediate effect on the computation time required to solve a particular problem apart from incorporating complex boundary conditions. We compared our numerical models with the analytical solution of this diffusion equation. We validated the FDM numerical model using X-Ray Tomography (CT) experimental data from the single-phase spontaneous imbibition experiment, where two simultaneously varying parameters of weight gain and CT water saturation were used and then went ahead and compared the results of FEM model to that of FDM model. A two-phase field size example was taken and results from a commercial simulator were compared to the FEM model to bring out the limitations of this approach.
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Geostatistics for Naturally Fractured ReservoirsNiven, Eric B Unknown Date
No description available.
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Numerical Modeling of Fracture Permeability Change in Naturally Fractured Reservoirs Using a Fully Coupled Displacement Discontinuity Method.Tao, Qingfeng 2010 May 1900 (has links)
Fractures are the main flow channels in naturally fractured reservoirs. Therefore
the fracture permeability is a critical parameter to production optimization and reservoir
management. Fluid pressure reduction caused by production induces an increase in
effective stress in naturally fractured reservoirs. The change of effective stress induces
fracture deformation and changes fracture aperture and permeability, which in turn
influences the production. Coupled interactions exist in the fractured reservoir: (i) fluid
pressure change induces matrix deformation and stress change; (ii) matrix deformation
induces fluid volume change and fluid pressure change; (iii) fracture deformation
induces the change of pore pressure and stress in the whole field (the influence
disappears at infinity); (iv) the change of pore pressure and stress at any point has an
influence on the fracture and induces fracture deformation. To model accurately the
influence of pressure reduction on the fracture permeability change in naturally fractured
reservoirs, all of these coupled processes need to be considered. Therefore, in this
dissertation a fully coupled approach is developed to model the influence of production on fracture aperture and permeability by combining a finite difference method to solve
the fluid flow in fractures, a fully coupled displacement discontinuity method to build
the global relation of fracture deformation, and the Barton-Bandis model of fracture
deformation to build the local relation of fracture deformation.
The fully coupled approach is applied to simulate the fracture permeability
change in naturally fracture reservoir under isotropic in situ stress conditions and high
anisotropic in situ stress conditions, respectively. Under isotropic stress conditions, the
fracture aperture and permeability decrease with pressure reduction caused by
production, and the magnitude of the decrease is dependent on the initial effective in situ
stress. Under highly anisotropic stress, the fracture permeability can be enhanced by
production because of shear dilation. The enhancement of fracture permeability will
benefit to the production of oil and gas.
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Simulating water tracer test in naturally fractured reservoirs using discrete fracture and dual porosity modelsLalehrokh, Farshad 15 November 2012 (has links)
A naturally fractured reservoir (NFR) is a reservoir with a connected network of
fractures created by natural processes such as diastrophism and volume shrinkage
(Ordonez et al. 2001). There are two models to simulate this kind of reservoirs: the
discrete fracture model and the dual porosity model. In the dual porosity model, the
matrix blocks occupy the same physical space as the fracture network and are
identical rectangular parallelepipeds with no direct communication between isotropic
and homogeneous matrix blocks. However, each fracture and matrix property is
defined separately in the discrete fracture model.
Another feature of this thesis is tracer testing. In this process, a chemical or
radioactive element is injected to the reservoirs, and then it can be traced using the
devices, which are designed to detect the tracers. Tracer tests have several advantages
such as determining residual oil saturation, identifying barriers or high permeability
zones in reservoirs, and providing the information on flow patterns. Limited number of research studies has been done on performing tracer tests in
naturally fractured reservoirs. Also because there is not enough information about the
advantages and disadvantages of the discrete fracture and the dual porosity models,
researchers and engineers lack the expertise to confidently select either the discrete
fracture or the dual porosity models to simulate the different types of NFRs. In this thesis, we compared the oil and water productions, and tracer concentration
curves in various reservoir conditions, using both the discrete fracture and the dual
porosity models. We used the ECLIPSE, which is a commercial software package in
the area of petroleum industry, to model a naturally fractured reservoir. We
performed a simple waterflooding with two conservative tracers on the reservoirs.
The results presented in each section include the graphs of the oil production rate,
water production rate, and tracer concentration. In addition, we presented the oil
saturation profiles of a cross-section, which includes the production and injection
wells.
The results illustrated that both the discrete fracture and the dual porosity models are
in good agreement, except for a few special cases. Generally, the oil production using
the dual porosity model is more than in the discrete fracture model. The major
disadvantage of the dual porosity model is that the fluid distribution in the matrix
blocks is changing homogenously during the waterflooding period. In other words,
ECLIPSE shows a constant value of the oil and water saturations in each time step for
the matrix blocks. However, the dual porosity model is 3 to 4 times faster than the
discrete fracture model. In the discrete fracture model, the users have complete
control in defining the reservoirs. For example, the fracture aperture, fracture spacing,
and fracture porosities can be set by the user. The disadvantage of this model is that
millions of grid blocks are needed to model a large reservoir with small fracture
spacing. / text
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Numerical Investigation of Fractured Reservoir Response to Injection/Extraction Using a Fully Coupled Displacement Discontinuity MethodLee, Byungtark 2011 August 1900 (has links)
In geothermal reservoirs and unconventional gas reservoirs with very low matrix permeability, fractures are the main routes of fluid flow and heat transport, so the fracture permeability change is important. In fact, reservoir development under this circumstance relies on generation and stimulation of a fracture network. This thesis presents numerical simulation of the response of a fractured rock to injection and extraction considering the role of poro-thermoelasticity and joint deformation. Fluid flow and heat transport in the fracture are treated using a finite difference method while the fracture and rock matrix deformation are determined using the displacement discontinuity method (DDM).
The fractures response to fluid injection and extraction is affected both by the induced stresses as well as by the initial far-field stress. The latter is accounted for using the non-equilibrium condition, i.e., relaxing the assumption that the rock joints are in equilibrium with the in-situ stress state.
The fully coupled DDM simulation has been used to carry out several case studies to model the fracture response under different injection/extractions, in-situ stresses, joint geometries and properties, for both equilibrium and non-equilibrium conditions. The following observations are made: i) Fluid injection increases the pressure causing the joint to open. For non-isothermal injection, cooling increases the fracture aperture drastically by inducing tensile stresses. Higher fracture aperture means higher conductivity. ii) In a single fracture under constant anisotropic in-situ stress (non-equilibrium condition), permanent shear slip is encountered on all fracture segments when the shear strength is overcome by shear stress in response to fluid injection. With cooling operation, the fracture segments in the vicinity of the injection point are opened due to cooling-induced tensile stress and injection pressure, and all the fracture segments experience slip. iii) Fluid pressure in fractures increases in response to compression. The fluid compressibility and joint stiffness play a role. iv) When there are injection and extraction in fractured reservoirs, the cooler fluid flows through the fracture channels from the injection point to extraction well extracting heat from the warmer reservoir matrix. As the matrix cools, the resulting thermal stress increases the fracture apertures and thus increases the fracture conductivity. v) Injection decreases the amount of effective stress due to pressure increase in fracture and matrix near a well. In contrast, extraction increases the amount of effective stress due to pressure drop in fracture and matrix.
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Mecanismos de recuperação de oleos pesados durante a injeção de vapor num reservatorio naturalmente fraturado / Heavy oil recovery mechanisms during steam injection in naturally fractured reservoirsMateo Hernandez, Juan Alberto 10 September 2006 (has links)
Orientador: Osvair Vidal Trevisan / Dissertação (mestrado) - Universidade Estadual de Campinas, Faculdade de Engenharia Mecanica, Instituto de Geociencias / Made available in DSpace on 2018-08-12T20:49:17Z (GMT). No. of bitstreams: 1
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Previous issue date: 2006 / Resumo: Neste trabalho são investigados os impactos individual e coletivo dos mecanismos de gás em solução, geração de CO2, destilação, embebição capilar e drenagem gravitacional, sobre a recuperação de óleo e gás, durante a injeção continua de vapor num reservatório naturalmente fraturado contendo óleo pesado. A investigação é feita através de simulação numérica dos fenômenos em modelos padrões de reservatórios. Dois modelos numéricos semelhantes são usados para representar o processo de aquecimento da matriz. O primeiro descreve o aquecimento de uma seção horizontal bidimensional de um bloco da matriz circundado por uma fratura na qual circula vapor. O segundo modelo descreve o aquecimento de um bloco de matriz semelhantemente circundado por uma fratura em que circula vapor, porém na direção vertical, visando agregar o efeito da ação da gravidade. Os estudos foram conduzidos para rochas saturadas com óleo vivo. As propriedades da rocha são as de um reservatório carbonático fraturado real e as propriedades dos fluidos se referem também ao mesmo caso real. Alem disso, as condições operacionais adotadas de pressão e temperatura são as observadas no campo, tornando o estudo e suas conclusões como próprias de um estudo de caso. Os resultados mostram que os principais mecanismos de recuperação de óleo da matriz durante o intervalo de aquecimento de 10 anos, foram os mecanismos de gás em solução e de destilação por arraste de vapor. Este último é o mecanismo de maior importância e é responsável pelo melhoramento da qualidade do óleo produzido / Abstract: In this work, the individual and collective impacts of the mechanisms solution gas drive, CO2 generation, steam distillation, capillary imbibition and drainage gravitational, on the oil and gas recovery, were investigated during the steamflooding of a naturally fractured reservoir containing heavy oil. The investigation was performed for standard reservoir models through numeric simulation. Two similar numerical models represent the matrix heating process. The first describes the heating of a horizontal cross-section of a matrix block surrounded by a fracture, in which the steam is flooding. The second model describes the same method of matrix heating, which was represented in the first model, but in the vertical direction, investigating the action of gravity. The studies were performed for a rock saturated with live oil. The rock properties are the same of a real fractured carbonate reservoir and the fluid properties also refer to the same real case. In addition, the adopted field operational parameters (pressure and temperature) refer to field conditions, turning the study and its conclusions as proper of a case study. The results show that the main mechanisms of oil recovery for the matrix block during the heating interval of 10 years were the integrated action of solution gas and steam distillation. The latter is the dominant mechanism and it is responsible for the improvement in the quality of the produced oil / Mestrado / Reservatórios e Gestão / Mestre em Ciências e Engenharia de Petróleo
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