Experimental study on fracture propagation of hydraulic fracturing for tight sandstone outcrop

The tight sandstone oil reservoirs characterized by the low porosity and permeability must be hydraulically fractured to obtain the commercial production. Nevertheless, the post-fracturing production of tight oil reservoirs is not always satisfactory. The influence mechanism of various factors on th...

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Main Authors: Wenguang Duan, Baojiang Sun, Deng Pan, Tao Wang, Tiankui Guo, Zhiyuan Wang
Format: Article
Language:English
Published: SAGE Publishing 2021-01-01
Series:Energy Exploration & Exploitation
Online Access:https://doi.org/10.1177/0144598720972513
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spelling doaj-e3ebc25ad67341c4b1796d0b853f1e112021-01-12T00:33:57ZengSAGE PublishingEnergy Exploration & Exploitation0144-59872048-40542021-01-013910.1177/0144598720972513Experimental study on fracture propagation of hydraulic fracturing for tight sandstone outcropWenguang DuanBaojiang SunDeng PanTao WangTiankui GuoZhiyuan WangThe tight sandstone oil reservoirs characterized by the low porosity and permeability must be hydraulically fractured to obtain the commercial production. Nevertheless, the post-fracturing production of tight oil reservoirs is not always satisfactory. The influence mechanism of various factors on the fracture propagation in the tight oil reservoirs needs further investigation to provide an optimized fracturing plan, obtain an expected fracture morphology and increase the oil productivity. Thus, the horizontal well fracturing simulations were carried out in a large-scale true tri-axial test system with the samples from the Upper Triassic Yanchang Fm tight sandstone outcrops in Yanchang County, Shaanxi, China, and the results were compared with those of fracturing simulations of the shale outcrop in the 5th member of Xujiahe Fm (abbreviated as the Xu 5th Member) in the Sichuan Basin. The effects of the natural fracture (NF) development degree, horizontal in-situ stress conditions, fracturing treatment parameters, etc. on the hydraulic fracture (HF) propagation morphology were investigated. The results show that conventional hydraulic fracturing of the tight sandstone without NFs only produces a single double-wing primary fracture. The fracture propagation path in the shale or the tight sandstone with developed NFs is controlled by the high horizontal differential stress. The higher stress difference (<12MPa) facilitates forming the complex fracture network. It is recommended to fracture the reservoir with developed NFs by injecting the high-viscosity guar gum firstly and the low-viscosity slick water then to increase the SRV. The low-to-high variable rate fracturing method is recommended as the low injection rate facilitates the fracturing fluid filtration into the NF system, and the high injection rate increases the net pressure within the fracture. The dual-horizontal well simultaneous fracturing increases the HF density and enhances the HF complexity in the reservoir, and significantly increases the possibility of forming the complex fracture network. The fracturing pressure curves reflect the fracture propagation status. According to statistical analysis, the fracturing curves are divided into types corresponding to multi-bedding plane (BP) opening, single fracture generation, multi-fracture propagation under variable rate fracturing, and forming of the fracture network through communicating the HF with NFs. The results provide a reference for the study of the HF propagation mechanism and the fracturing design in the tight sandstone reservoirs.https://doi.org/10.1177/0144598720972513
collection DOAJ
language English
format Article
sources DOAJ
author Wenguang Duan
Baojiang Sun
Deng Pan
Tao Wang
Tiankui Guo
Zhiyuan Wang
spellingShingle Wenguang Duan
Baojiang Sun
Deng Pan
Tao Wang
Tiankui Guo
Zhiyuan Wang
Experimental study on fracture propagation of hydraulic fracturing for tight sandstone outcrop
Energy Exploration & Exploitation
author_facet Wenguang Duan
Baojiang Sun
Deng Pan
Tao Wang
Tiankui Guo
Zhiyuan Wang
author_sort Wenguang Duan
title Experimental study on fracture propagation of hydraulic fracturing for tight sandstone outcrop
title_short Experimental study on fracture propagation of hydraulic fracturing for tight sandstone outcrop
title_full Experimental study on fracture propagation of hydraulic fracturing for tight sandstone outcrop
title_fullStr Experimental study on fracture propagation of hydraulic fracturing for tight sandstone outcrop
title_full_unstemmed Experimental study on fracture propagation of hydraulic fracturing for tight sandstone outcrop
title_sort experimental study on fracture propagation of hydraulic fracturing for tight sandstone outcrop
publisher SAGE Publishing
series Energy Exploration & Exploitation
issn 0144-5987
2048-4054
publishDate 2021-01-01
description The tight sandstone oil reservoirs characterized by the low porosity and permeability must be hydraulically fractured to obtain the commercial production. Nevertheless, the post-fracturing production of tight oil reservoirs is not always satisfactory. The influence mechanism of various factors on the fracture propagation in the tight oil reservoirs needs further investigation to provide an optimized fracturing plan, obtain an expected fracture morphology and increase the oil productivity. Thus, the horizontal well fracturing simulations were carried out in a large-scale true tri-axial test system with the samples from the Upper Triassic Yanchang Fm tight sandstone outcrops in Yanchang County, Shaanxi, China, and the results were compared with those of fracturing simulations of the shale outcrop in the 5th member of Xujiahe Fm (abbreviated as the Xu 5th Member) in the Sichuan Basin. The effects of the natural fracture (NF) development degree, horizontal in-situ stress conditions, fracturing treatment parameters, etc. on the hydraulic fracture (HF) propagation morphology were investigated. The results show that conventional hydraulic fracturing of the tight sandstone without NFs only produces a single double-wing primary fracture. The fracture propagation path in the shale or the tight sandstone with developed NFs is controlled by the high horizontal differential stress. The higher stress difference (<12MPa) facilitates forming the complex fracture network. It is recommended to fracture the reservoir with developed NFs by injecting the high-viscosity guar gum firstly and the low-viscosity slick water then to increase the SRV. The low-to-high variable rate fracturing method is recommended as the low injection rate facilitates the fracturing fluid filtration into the NF system, and the high injection rate increases the net pressure within the fracture. The dual-horizontal well simultaneous fracturing increases the HF density and enhances the HF complexity in the reservoir, and significantly increases the possibility of forming the complex fracture network. The fracturing pressure curves reflect the fracture propagation status. According to statistical analysis, the fracturing curves are divided into types corresponding to multi-bedding plane (BP) opening, single fracture generation, multi-fracture propagation under variable rate fracturing, and forming of the fracture network through communicating the HF with NFs. The results provide a reference for the study of the HF propagation mechanism and the fracturing design in the tight sandstone reservoirs.
url https://doi.org/10.1177/0144598720972513
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