Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

An Integrated Sanding Study in an HP/HT Tight-Sandstone Gas Reservoir

View through CrossRef
Abstract KS is a tight-sandstone and high-pressure-high-temperature (HPHT) gas reservoir in northwest China. It is characterized by a depth of more than 6000 m, temperature over 175°C, and pore pressure over 110 MPa. Despite the high unconfined compressive strength (UCS) of sandstone, almost half of the wells encountered sanding issues. The sanding wells exhibited low production rate, nozzle and pipeline erosion, sanding up, and even permanent closure. Investigating the sanding mechanism and developing solutions for sanding prevention are urgent needs due to the economic loss of low production. An integrated sanding study was conducted to investigate the sanding mechanism. The entire sanding process was analyzed, including stress field alteration during production, rock failure, softening, and sand grain migration. First, wells with sanding issues were identified through production characteristics and field observation. After this, analysis of laboratory tests was performed to better understand the tight-sandstone properties, especially UCS, the softening parameter, and residual strength. Based on the tests, an elastoplastic damage model was proposed to delineate rock failure and sanding behavior. Then, a finite element model was built to simulate the damage of a perforation hole with field data, including hole diameter and length, rock stiffness and strength, drawdown, depletion, and so on. More simulation scenarios were performed to investigate the continuous sanding, transient sanding, and water hammer effect. Grain migration in perforation holes and in pipelines was also studied. It was revealed that shear failure of perforation hole induced by drawdown and depletion was the root cause of sanding problem. Meanwhile, it was also confirmed that erosion and water hammer effect had very limited effect on sanding. Use of the elastoplastic damage model for the simulation of perforation hole failure enabled predicting the sand amount and determining the critical drawdown and depletion for sanding. In the end, an approach to identifying wells with high sanding risk and the key factors behind the sanding were provided, and sanding prevention suggestions were proposed. The new elastoplastic damage model explains the sanding mechanism in a tight-sandstone reservoir and enables evaluating the sand volume, which has rarely been published previously. Laboratory tests, field observation, and numerical simulation were combined effectively to investigate the sanding issue. By utilizing the model, producers can find the key factors behind sanding issues, prevent sanding with a better production strategy, and avoid the economic loss, which are critical for the long-term exploration and production of this area.
Title: An Integrated Sanding Study in an HP/HT Tight-Sandstone Gas Reservoir
Description:
Abstract KS is a tight-sandstone and high-pressure-high-temperature (HPHT) gas reservoir in northwest China.
It is characterized by a depth of more than 6000 m, temperature over 175°C, and pore pressure over 110 MPa.
Despite the high unconfined compressive strength (UCS) of sandstone, almost half of the wells encountered sanding issues.
The sanding wells exhibited low production rate, nozzle and pipeline erosion, sanding up, and even permanent closure.
Investigating the sanding mechanism and developing solutions for sanding prevention are urgent needs due to the economic loss of low production.
An integrated sanding study was conducted to investigate the sanding mechanism.
The entire sanding process was analyzed, including stress field alteration during production, rock failure, softening, and sand grain migration.
First, wells with sanding issues were identified through production characteristics and field observation.
After this, analysis of laboratory tests was performed to better understand the tight-sandstone properties, especially UCS, the softening parameter, and residual strength.
Based on the tests, an elastoplastic damage model was proposed to delineate rock failure and sanding behavior.
Then, a finite element model was built to simulate the damage of a perforation hole with field data, including hole diameter and length, rock stiffness and strength, drawdown, depletion, and so on.
More simulation scenarios were performed to investigate the continuous sanding, transient sanding, and water hammer effect.
Grain migration in perforation holes and in pipelines was also studied.
It was revealed that shear failure of perforation hole induced by drawdown and depletion was the root cause of sanding problem.
Meanwhile, it was also confirmed that erosion and water hammer effect had very limited effect on sanding.
Use of the elastoplastic damage model for the simulation of perforation hole failure enabled predicting the sand amount and determining the critical drawdown and depletion for sanding.
In the end, an approach to identifying wells with high sanding risk and the key factors behind the sanding were provided, and sanding prevention suggestions were proposed.
The new elastoplastic damage model explains the sanding mechanism in a tight-sandstone reservoir and enables evaluating the sand volume, which has rarely been published previously.
Laboratory tests, field observation, and numerical simulation were combined effectively to investigate the sanding issue.
By utilizing the model, producers can find the key factors behind sanding issues, prevent sanding with a better production strategy, and avoid the economic loss, which are critical for the long-term exploration and production of this area.

Related Results

Estimation and Analysis of Sanding Length in Brush Sanding Specially Shaped Wood Products
Estimation and Analysis of Sanding Length in Brush Sanding Specially Shaped Wood Products
Abstract Sanding is an important process in furniture production. Components with unconventional shapes are usually sanded by hand rather than by machine because heavy sand...
Sanding in Response to Dynamic Changes in Downhole Conditions
Sanding in Response to Dynamic Changes in Downhole Conditions
Abstract Downhole conditions from the sanding risk viewpoint refer to anything in the downhole that affects rock disaggregation and sandface fluid flux, two principa...
Dominant Role of Fluid Flux on Sanding
Dominant Role of Fluid Flux on Sanding
Abstract The paper is about why and how to transition to the fluid-flux based parameters from the conventional drawdown based parameters in optimizing sandface co...
Sanding Process and Permeability Change
Sanding Process and Permeability Change
Abstract The main objective of this paper is to establish a consistent geometrical frame focusing on the coupling between hydromechanical aspects of the sanding p...
Sanding Process and Permeability Change
Sanding Process and Permeability Change
Abstract This paper first presents a consistent mathematical framework to predict sand production volume, focusing on the coupling between hydro-mechanical factor...
Improved Reservoir Fluid Estimation for Prospect Evaluation Using Mud Gas Data
Improved Reservoir Fluid Estimation for Prospect Evaluation Using Mud Gas Data
Abstract Reservoir fluid estimation for exploration prospects can be random and of large uncertainties. Typically, the reservoir fluid estimation in a prospect can b...
Study on Geochemical Characteristics of tight sandstone gas accumulation in Linxing area
Study on Geochemical Characteristics of tight sandstone gas accumulation in Linxing area
Based on the comprehensive analysis of the characteristics of tight sandstone gas composition, carbon isotope, light hydrocarbons and source rocks in Linxing area of Ordos Basin, t...
Comparisons of Pore Structure for Unconventional Tight Gas, Coalbed Methane and Shale Gas Reservoirs
Comparisons of Pore Structure for Unconventional Tight Gas, Coalbed Methane and Shale Gas Reservoirs
Extended abstract Tight sands gas, coalbed methane and shale gas are three kinds of typical unconventional natural gas. With the decrease of conventional oil and gas...

Back to Top