Modeling Hydraulic Fracturing Using Natural Gas Foam as Fracturing Fluids

Stranded gas emission from the field production because of the limitations in the pipeline infrastructure has become one of the major contributors to the greenhouse effects. How to handle the stranded gas is a troublesome problem under the background of global “net-zero” emission efforts. On the oth...

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Published in:Energies
Main Authors: Shuang Zheng, Mukul M. Sharma
Format: Article
Language:English
Published: MDPI AG 2021-11-01
Subjects:
Online Access:https://www.mdpi.com/1996-1073/14/22/7645
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author Shuang Zheng
Mukul M. Sharma
author_facet Shuang Zheng
Mukul M. Sharma
author_sort Shuang Zheng
collection DOAJ
container_title Energies
description Stranded gas emission from the field production because of the limitations in the pipeline infrastructure has become one of the major contributors to the greenhouse effects. How to handle the stranded gas is a troublesome problem under the background of global “net-zero” emission efforts. On the other hand, the cost of water for hydraulic fracturing is high and water is not accessible in some areas. The idea of using stranded gas in replace of the water-based fracturing fluid can reduce the gas emission and the cost. This paper presents some novel numerical studies on the feasibility of using stranded natural gas as fracturing fluids. Differences in the fracture creating, proppant placement, and oil/gas/water flowback are compared between natural gas fracturing fluids and water-based fracturing fluids. A fully integrated equation of state compositional hydraulic fracturing and reservoir simulator is used in this paper. Public datasets for the Permian Basin rock and fluid properties and natural gas foam properties are collected to set up simulation cases. The reservoir hydrocarbon fluid and natural gas fracturing fluids phase behavior is modeled using the Peng-Robinson equation of state. The evolving of created fracture geometry, conductivity and flowback performance during the lifecycle of the well (injection, shut-in, and production) are analyzed for the gas and water fracturing fluids. Simulation results show that natural gas and foam fracturing fluids are better than water-based fracturing fluids in terms of lower breakdown pressure, lower water leakoff into the reservoir, and higher cluster efficiency. NG foams tend to create better propped fractures with shorter length and larger width, because of their high viscosity. NG foam is also found to create better stimulated rock volume (SRV) permeability, better fracturing fluid flowback with a large water usage reduction, and high natural gas consumption. The simulation results presented in this paper are helpful to the operators in reducing natural gas emission while reducing the cost of hydraulic fracturing operation.
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spelling doaj-art-d6042e6f1aef4d2ea6aa8568018a51552025-08-20T00:03:24ZengMDPI AGEnergies1996-10732021-11-011422764510.3390/en14227645Modeling Hydraulic Fracturing Using Natural Gas Foam as Fracturing FluidsShuang Zheng0Mukul M. Sharma1Center for Subsurface Energy and the Environment, The University of Texas at Austin, Austin, TX 78712, USACenter for Subsurface Energy and the Environment, The University of Texas at Austin, Austin, TX 78712, USAStranded gas emission from the field production because of the limitations in the pipeline infrastructure has become one of the major contributors to the greenhouse effects. How to handle the stranded gas is a troublesome problem under the background of global “net-zero” emission efforts. On the other hand, the cost of water for hydraulic fracturing is high and water is not accessible in some areas. The idea of using stranded gas in replace of the water-based fracturing fluid can reduce the gas emission and the cost. This paper presents some novel numerical studies on the feasibility of using stranded natural gas as fracturing fluids. Differences in the fracture creating, proppant placement, and oil/gas/water flowback are compared between natural gas fracturing fluids and water-based fracturing fluids. A fully integrated equation of state compositional hydraulic fracturing and reservoir simulator is used in this paper. Public datasets for the Permian Basin rock and fluid properties and natural gas foam properties are collected to set up simulation cases. The reservoir hydrocarbon fluid and natural gas fracturing fluids phase behavior is modeled using the Peng-Robinson equation of state. The evolving of created fracture geometry, conductivity and flowback performance during the lifecycle of the well (injection, shut-in, and production) are analyzed for the gas and water fracturing fluids. Simulation results show that natural gas and foam fracturing fluids are better than water-based fracturing fluids in terms of lower breakdown pressure, lower water leakoff into the reservoir, and higher cluster efficiency. NG foams tend to create better propped fractures with shorter length and larger width, because of their high viscosity. NG foam is also found to create better stimulated rock volume (SRV) permeability, better fracturing fluid flowback with a large water usage reduction, and high natural gas consumption. The simulation results presented in this paper are helpful to the operators in reducing natural gas emission while reducing the cost of hydraulic fracturing operation.https://www.mdpi.com/1996-1073/14/22/7645hydraulic fracturing modelingenergized fracturing fluidsstress dependent permeabilitywell lifecycle simulationfractured well productivity
spellingShingle Shuang Zheng
Mukul M. Sharma
Modeling Hydraulic Fracturing Using Natural Gas Foam as Fracturing Fluids
hydraulic fracturing modeling
energized fracturing fluids
stress dependent permeability
well lifecycle simulation
fractured well productivity
title Modeling Hydraulic Fracturing Using Natural Gas Foam as Fracturing Fluids
title_full Modeling Hydraulic Fracturing Using Natural Gas Foam as Fracturing Fluids
title_fullStr Modeling Hydraulic Fracturing Using Natural Gas Foam as Fracturing Fluids
title_full_unstemmed Modeling Hydraulic Fracturing Using Natural Gas Foam as Fracturing Fluids
title_short Modeling Hydraulic Fracturing Using Natural Gas Foam as Fracturing Fluids
title_sort modeling hydraulic fracturing using natural gas foam as fracturing fluids
topic hydraulic fracturing modeling
energized fracturing fluids
stress dependent permeability
well lifecycle simulation
fractured well productivity
url https://www.mdpi.com/1996-1073/14/22/7645
work_keys_str_mv AT shuangzheng modelinghydraulicfracturingusingnaturalgasfoamasfracturingfluids
AT mukulmsharma modelinghydraulicfracturingusingnaturalgasfoamasfracturingfluids