Laboratory Development to Successful Field Application of Unconventional Non-Beaded Micromaterial for Making Lower Permeability Lighter and Stronger Cements

2019 ◽  
Author(s):  
Roderick Pernites ◽  
Jason Brady ◽  
Felipe Padilla ◽  
Jordan Clark ◽  
Gladyss Ramos ◽  
...  
Energies ◽  
2020 ◽  
Vol 13 (17) ◽  
pp. 4581
Author(s):  
Aysylu Askarova ◽  
Evgeny Popov ◽  
Matthew Ursenbach ◽  
Gordon Moore ◽  
Sudarshan Mehta ◽  
...  

The work presented herein is devoted to a unique set of forward and reverse combustion tube (CT) experiments to access the suitability and potential of the in situ combustion (ISC) method for the light oil carbonate reservoir. One forward and one reverse combustion tube tests were carried out using the high-pressure combustion tube (HPCT) experimental setup. However, during reverse combustion, the front moved in the opposite direction to the airflow. The results obtained from experiments such as fuel/air requirements, H/C ratio, and recovery efficiency are crucial for further validation of the numerical model. A quantitative assessment of the potential for the combustion was carried out. The oil recovery of forward combustion was as high as 91.4% of the initial oil in place, while that for the reverse combustion test demonstrated a 43% recovery. In the given conditions, forward combustion demonstrated significantly higher efficiency. However, the stabilized combustion front propagation and produced gases of reverse combustion prove its possible applicability. Currently, there is a limited amount of available studies on reverse combustion and a lack of publications within the last decades despite advances in technologies. However, reverse combustion might have advantages over forward combustion for heavy oil reservoirs with lower permeability or might serve as a reservoir preheating technique. These experiments give the opportunity to build and validate the numerical models of forward and reverse combustion conducted at reservoir conditions and test their field application using different scenarios.


1996 ◽  
Author(s):  
J.W. Dobson ◽  
J.C. Harrison ◽  
A.H. Hale ◽  
H.C. Lau ◽  
L.A. Bernardi ◽  
...  

Geofluids ◽  
2019 ◽  
Vol 2019 ◽  
pp. 1-11 ◽  
Author(s):  
Yijin Zeng ◽  
Zizhen Wang ◽  
Yanbin Zang ◽  
Ruihe Wang ◽  
Feifei Wang ◽  
...  

Currently, there is no proper method to predict the pore pressure disturbance caused by multistage fracturing in shale gas, which has challenged drilling engineering in practice, especially for the infilling well drilling within/near the fractured zones. A numerical modelling method of pore pressure redistribution around the multistage fractured horizontal wellbore was put forward based on the theory of fluid transportation in porous media. The fracture network of each stage was represented by an elliptical zone with high permeability. Five stages of fracturing were modelled simultaneously to consider the interactions among fractures. The effects of formation permeability, fracturing fluid viscosity, and pressure within the fractures on the pore pressure disturbance were numerically investigated. Modelling results indicated that the pore pressure disturbance zone expands as the permeability and/or the differential pressure increases, while it decreases when the viscosity of the fracturing fluid increases. The pore pressure disturbance level becomes weaker from the fracture tip to the far field along the main-fracture propagation direction. The pore pressure disturbance contours obviously have larger slopes with the variation of permeability than those of the differential pressure. The distances between the pore pressure disturbance contours are smaller at lower permeability and higher viscosity. The modelling results of the updated pore pressure distribution are of great importance for safe drilling. A case study of three wells within one platform showed that the modelling method could provide a reliable estimation of the pore pressure disturbance area caused by multistage fracturing.


2000 ◽  
Vol 15 (02) ◽  
pp. 105-111 ◽  
Author(s):  
J.W. Dobson ◽  
J.C. Harrison ◽  
A.H. Hale ◽  
H.C. Lau ◽  
L.A. Bernardi ◽  
...  

2010 ◽  
Author(s):  
Xuxin Wan ◽  
Hongjun Zhang ◽  
Yuhai Li ◽  
Yaxin Yang ◽  
Huifu Shan ◽  
...  

Sign in / Sign up

Export Citation Format

Share Document