A feasibility study of using frac‐packed wells to produce natural gas from subsea gas hydrate resources

Abstract Frac‐packing is an attractive technique to stimulate production for gas hydrate reservoirs with the additional benefit of solving the problematic sand production problems. So far, there have been no documented mathematical models to predict the propagation of fractures and to forecast gas p...

Full description

Bibliographic Details
Main Authors: Liqun Shan, ChunKai Fu, Yanchang Liu, Yanyan Qi
Format: Article
Language:English
Published: Wiley 2020-04-01
Series:Energy Science & Engineering
Subjects:
Online Access:https://doi.org/10.1002/ese3.590
id doaj-c677932962b040dca14737f572757b9e
record_format Article
spelling doaj-c677932962b040dca14737f572757b9e2020-11-25T02:06:27ZengWileyEnergy Science & Engineering2050-05052020-04-01841247125910.1002/ese3.590A feasibility study of using frac‐packed wells to produce natural gas from subsea gas hydrate resourcesLiqun Shan0ChunKai Fu1Yanchang Liu2Yanyan Qi3Northeast Petroleum University Daqing ChinaUniversity of Louisiana at Lafayette Lafayette LouisianaNortheast Petroleum University Daqing ChinaNortheast Petroleum University Daqing ChinaAbstract Frac‐packing is an attractive technique to stimulate production for gas hydrate reservoirs with the additional benefit of solving the problematic sand production problems. So far, there have been no documented mathematical models to predict the propagation of fractures and to forecast gas production for frac‐packed gas wells. An analytical model was derived to predict the propagation of a horizontal fracture and to assess the well productivity in frac‐packed gas wells in a gas hydrate reservoir. The model assumes a steady, single‐gas, Darcy flow in the matrix and fracture. Case analyses were performed for key design and operational parameters with the analytical model. The result shows that it is easy to control the relationship between the wellbore fracturing pressure and injecting flow rate, and thus, fractures of any length can be produced in the fracture penetration process of frac‐packed wells. Case analysis also shows that the gas production rate increases nonlinearly with the fracture propagation and increases linearly with the fracture width. The increase in fracture width turns out to be surprisingly effective in improving well productivity without threshold within the investigated range of width. It was also found that the increase in fracture permeability contributes more to the productivity of the frac‐packed wells than the increase in matrix permeability. The model also assumes no flow at the boundary of the reservoir, which may underestimate those gas hydrate reservoirs with pressure supply. This work uses a theoretical approach to estimate the productivity of the frac‐packed gas hydrate reservoirs, which may benefit in solving the sand production issue during the production process as well.https://doi.org/10.1002/ese3.590frac‐packinggas hydrategas productionwell productivity
collection DOAJ
language English
format Article
sources DOAJ
author Liqun Shan
ChunKai Fu
Yanchang Liu
Yanyan Qi
spellingShingle Liqun Shan
ChunKai Fu
Yanchang Liu
Yanyan Qi
A feasibility study of using frac‐packed wells to produce natural gas from subsea gas hydrate resources
Energy Science & Engineering
frac‐packing
gas hydrate
gas production
well productivity
author_facet Liqun Shan
ChunKai Fu
Yanchang Liu
Yanyan Qi
author_sort Liqun Shan
title A feasibility study of using frac‐packed wells to produce natural gas from subsea gas hydrate resources
title_short A feasibility study of using frac‐packed wells to produce natural gas from subsea gas hydrate resources
title_full A feasibility study of using frac‐packed wells to produce natural gas from subsea gas hydrate resources
title_fullStr A feasibility study of using frac‐packed wells to produce natural gas from subsea gas hydrate resources
title_full_unstemmed A feasibility study of using frac‐packed wells to produce natural gas from subsea gas hydrate resources
title_sort feasibility study of using frac‐packed wells to produce natural gas from subsea gas hydrate resources
publisher Wiley
series Energy Science & Engineering
issn 2050-0505
publishDate 2020-04-01
description Abstract Frac‐packing is an attractive technique to stimulate production for gas hydrate reservoirs with the additional benefit of solving the problematic sand production problems. So far, there have been no documented mathematical models to predict the propagation of fractures and to forecast gas production for frac‐packed gas wells. An analytical model was derived to predict the propagation of a horizontal fracture and to assess the well productivity in frac‐packed gas wells in a gas hydrate reservoir. The model assumes a steady, single‐gas, Darcy flow in the matrix and fracture. Case analyses were performed for key design and operational parameters with the analytical model. The result shows that it is easy to control the relationship between the wellbore fracturing pressure and injecting flow rate, and thus, fractures of any length can be produced in the fracture penetration process of frac‐packed wells. Case analysis also shows that the gas production rate increases nonlinearly with the fracture propagation and increases linearly with the fracture width. The increase in fracture width turns out to be surprisingly effective in improving well productivity without threshold within the investigated range of width. It was also found that the increase in fracture permeability contributes more to the productivity of the frac‐packed wells than the increase in matrix permeability. The model also assumes no flow at the boundary of the reservoir, which may underestimate those gas hydrate reservoirs with pressure supply. This work uses a theoretical approach to estimate the productivity of the frac‐packed gas hydrate reservoirs, which may benefit in solving the sand production issue during the production process as well.
topic frac‐packing
gas hydrate
gas production
well productivity
url https://doi.org/10.1002/ese3.590
work_keys_str_mv AT liqunshan afeasibilitystudyofusingfracpackedwellstoproducenaturalgasfromsubseagashydrateresources
AT chunkaifu afeasibilitystudyofusingfracpackedwellstoproducenaturalgasfromsubseagashydrateresources
AT yanchangliu afeasibilitystudyofusingfracpackedwellstoproducenaturalgasfromsubseagashydrateresources
AT yanyanqi afeasibilitystudyofusingfracpackedwellstoproducenaturalgasfromsubseagashydrateresources
AT liqunshan feasibilitystudyofusingfracpackedwellstoproducenaturalgasfromsubseagashydrateresources
AT chunkaifu feasibilitystudyofusingfracpackedwellstoproducenaturalgasfromsubseagashydrateresources
AT yanchangliu feasibilitystudyofusingfracpackedwellstoproducenaturalgasfromsubseagashydrateresources
AT yanyanqi feasibilitystudyofusingfracpackedwellstoproducenaturalgasfromsubseagashydrateresources
_version_ 1724933881743802368