3D numerical simulation of heterogeneous in situ stress field in low-permeability reservoirs

Abstract Analysis of the in situ stress orientation and magnitude in the No. 4 Structure of Nanpu Sag was performed on the basis of data obtained from borehole breakout and acoustic emission measurements. On the basis of mechanical experiments, logging interpretation, and seismic data, a 3D geologic...

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Main Authors: Jianwei Feng, Lin Shang, Xizhe Li, Peng Luo
Format: Article
Language:English
Published: SpringerOpen 2019-09-01
Series:Petroleum Science
Subjects:
Online Access:http://link.springer.com/article/10.1007/s12182-019-00360-w
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spelling doaj-8c4a18c2653f49eb81865e7e1d7b585d2020-11-25T03:24:55ZengSpringerOpenPetroleum Science1672-51071995-82262019-09-0116593995510.1007/s12182-019-00360-w3D numerical simulation of heterogeneous in situ stress field in low-permeability reservoirsJianwei Feng0Lin Shang1Xizhe Li2Peng Luo3School of Geosciences, China University of Petroleum (Huadong)Exploration and Development Research Institute, PetroChina Jidong Oilfield CompanyResearch Institute of Petroleum Exploration and DevelopmentSaskatchewan Research CouncilAbstract Analysis of the in situ stress orientation and magnitude in the No. 4 Structure of Nanpu Sag was performed on the basis of data obtained from borehole breakout and acoustic emission measurements. On the basis of mechanical experiments, logging interpretation, and seismic data, a 3D geological model and heterogeneous rock mechanics field of the reservoir were constructed. Finite element simulation techniques were then used for the detailed prediction of the 3D stress field. The results indicated that the maximum horizontal stress orientation in the study area was generally NEE–SWW trending, with significant changes in the in situ stress orientation within and between fault blocks. Along surfaces and profiles, stress magnitudes were discrete and the in situ stress belonged to the Ia-type. Observed inter-strata differences were characterized as five different types of in situ stress profile. Faults were the most important factor causing large distributional differences in the stress field of reservoirs within the complex fault blocks. The next important influence on the stress field was the reservoir’s rock mechanics parameters, which impacted on the magnitudes of in situ stress magnitudes. This technique provided a theoretical basis for more efficient exploration and development of low-permeability reservoirs within complex fault blocks.http://link.springer.com/article/10.1007/s12182-019-00360-wComplex fault blocks3D heterogeneityIn situ stress predictionReservoir modelNanpu Sag
collection DOAJ
language English
format Article
sources DOAJ
author Jianwei Feng
Lin Shang
Xizhe Li
Peng Luo
spellingShingle Jianwei Feng
Lin Shang
Xizhe Li
Peng Luo
3D numerical simulation of heterogeneous in situ stress field in low-permeability reservoirs
Petroleum Science
Complex fault blocks
3D heterogeneity
In situ stress prediction
Reservoir model
Nanpu Sag
author_facet Jianwei Feng
Lin Shang
Xizhe Li
Peng Luo
author_sort Jianwei Feng
title 3D numerical simulation of heterogeneous in situ stress field in low-permeability reservoirs
title_short 3D numerical simulation of heterogeneous in situ stress field in low-permeability reservoirs
title_full 3D numerical simulation of heterogeneous in situ stress field in low-permeability reservoirs
title_fullStr 3D numerical simulation of heterogeneous in situ stress field in low-permeability reservoirs
title_full_unstemmed 3D numerical simulation of heterogeneous in situ stress field in low-permeability reservoirs
title_sort 3d numerical simulation of heterogeneous in situ stress field in low-permeability reservoirs
publisher SpringerOpen
series Petroleum Science
issn 1672-5107
1995-8226
publishDate 2019-09-01
description Abstract Analysis of the in situ stress orientation and magnitude in the No. 4 Structure of Nanpu Sag was performed on the basis of data obtained from borehole breakout and acoustic emission measurements. On the basis of mechanical experiments, logging interpretation, and seismic data, a 3D geological model and heterogeneous rock mechanics field of the reservoir were constructed. Finite element simulation techniques were then used for the detailed prediction of the 3D stress field. The results indicated that the maximum horizontal stress orientation in the study area was generally NEE–SWW trending, with significant changes in the in situ stress orientation within and between fault blocks. Along surfaces and profiles, stress magnitudes were discrete and the in situ stress belonged to the Ia-type. Observed inter-strata differences were characterized as five different types of in situ stress profile. Faults were the most important factor causing large distributional differences in the stress field of reservoirs within the complex fault blocks. The next important influence on the stress field was the reservoir’s rock mechanics parameters, which impacted on the magnitudes of in situ stress magnitudes. This technique provided a theoretical basis for more efficient exploration and development of low-permeability reservoirs within complex fault blocks.
topic Complex fault blocks
3D heterogeneity
In situ stress prediction
Reservoir model
Nanpu Sag
url http://link.springer.com/article/10.1007/s12182-019-00360-w
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AT xizheli 3dnumericalsimulationofheterogeneousinsitustressfieldinlowpermeabilityreservoirs
AT pengluo 3dnumericalsimulationofheterogeneousinsitustressfieldinlowpermeabilityreservoirs
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