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首頁» 過刊瀏覽» 2021» Vol.6» Issue(3) 396-416???? DOI : 10.3969/j.issn.2096-1693.2021.03.032
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頁巖氣儲層四維地應(yīng)力演化及加密井復(fù)雜裂縫擴展研究進展
朱海燕,,宋宇家,,唐煊赫
1 成都理工大學(xué)油氣藏地質(zhì)及開發(fā)工程國家重點實驗室,成都 610059 2 西南石油大學(xué)油氣藏地質(zhì)及開發(fā)工程國家重點實驗室,成都 610500
Research progress on 4-dimensional stress evolution and complex fracture propagation of infill wells in shale gas reservoirs
ZHU Haiyan, SONG Yujia, TANG Xuanhe
1 State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation, Chengdu University of Technology, Chengdu610059, China 2 State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation, Southwest Petroleum University, Chengdu 610500, China

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摘要? 油氣藏流體運移及地層巖石形變貫穿油氣開發(fā)始終,,是油氣開發(fā)的核心科學(xué)問題,。頁巖儲層天然裂縫發(fā) 育,、地層流體流動機理多樣,、巖石力學(xué)參數(shù)呈現(xiàn)非均質(zhì)性和各向異性等特征,致使頁巖氣儲層氣藏滲流—地質(zhì) 力學(xué)耦合問題異常復(fù)雜,。頁巖氣井生產(chǎn)過程中井筒周圍儲層產(chǎn)生不同程度的壓降,,擾動壓降區(qū)的原地應(yīng)力,儲 層應(yīng)力隨開采時間不斷演化,即四維動態(tài)地應(yīng)力,。準(zhǔn)確預(yù)測頁巖氣儲層四維動態(tài)地應(yīng)力場是頁巖氣加密井壓裂 和重復(fù)壓裂設(shè)計的前提,。因此,本文系統(tǒng)總結(jié)了油氣藏滲流—地質(zhì)力學(xué)耦合及加密井裂縫擴展的數(shù)值模擬方法,, 深入討論了頁巖氣藏多場耦合模擬進展和最新研究成果,。目前油氣藏滲流—地質(zhì)力學(xué)耦合模型多種多樣,按照 耦合求解形式可劃分為全耦合,、順序耦合,、單向耦合及擬耦合,,通過一種或多種軟件結(jié)合實現(xiàn)復(fù)雜的耦合計算,, 但各類計算方法的計算時效性及適用性存在差異。由于頁巖儲層地質(zhì)特征復(fù)雜,,目前四維地應(yīng)力演化模型在傳 統(tǒng)模型基礎(chǔ)上進行了改進,,其主要為基于全耦合方法的連續(xù)介質(zhì)模型和離散裂縫模型,以及迭代耦合模型,。頁 巖氣開發(fā)過程中,,三向地應(yīng)力隨孔隙壓力的減小而降低,應(yīng)力方向也會隨之發(fā)生偏轉(zhuǎn),。相對于連續(xù)介質(zhì),,裂縫 會影響儲層地應(yīng)力分布規(guī)律和變化趨勢。這種地應(yīng)力狀態(tài)演化會使加密井裂縫擴展發(fā)生偏轉(zhuǎn)及產(chǎn)生“Frac-hit” 現(xiàn)象,,并引起“微地震屏障”效應(yīng),。頁巖氣藏開發(fā)過程中的儲層滲流—地質(zhì)力學(xué)耦合及裂縫擴展研究是多物理 場、多維度,、多尺度的耦合問題,,本文建議深入研究地質(zhì)工程一體化的解決方案,開展四維地應(yīng)力演化條件下 頁巖氣藏水平井重復(fù)壓裂及加密井壓裂過程中復(fù)雜裂縫擴展機理研究,、頁巖氣儲層立體化開發(fā)復(fù)雜裂縫空間干 擾機理研究,、重復(fù)壓裂及加密井壓裂時間優(yōu)化研究,以及水平井壓裂套管損傷機理研究等,,為我國頁巖氣藏的 持續(xù)高效開發(fā)提供理論支撐,。
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關(guān)鍵詞 : 頁巖氣藏,;滲流—地質(zhì)力學(xué)耦合;四維地應(yīng)力演化,;復(fù)雜裂縫擴展,;地質(zhì)工程一體化
Abstract
Fluid migration and rock deformation occur throughout oil and gas development, and they are the core scientific  
problems. The coupling of flow and geomechanics in shale gas reservoirs is extremely complicated due to natural fractures,  
complex flow mechanisms and the heterogeneity and anisotropy of rock mechanical parameters. Because of the pressure drop in  
the shale gas reservoir near the wellbores during production, in-situ stress is disturbed and changed over time, that is, 4D stress  
evolution. Accurate prediction of stress evolution of a shale gas reservoir is the prerequisite of optimal design of parent well  
re-fracturing and infill well fracturing. In this paper, research progresses and results of simulation methods of flow and geome
chanical coupling and fracture propagation are reviewed, especially in shale gas reservoirs. At present, there are various flow and  
geomechanical coupled models of oil and gas reservoirs. According to the types of coupling solutions, these can be classified as  
a fully coupled approach, iteratively coupled approach, partial coupled approach and quasi-coupled approach. Complex coupling  
calculation can be realized by combining one or more software algorithms, but there are some differences in the calculation  
timeliness and applicability of various calculation methods. Due to the complex geological characteristics of shale gas reservoirs,  
the current four-dimensional stress evolution models have been improved on the basis of traditional models, which are mainly  
continuous medium models and discrete fracture models based on the full coupled approach, as well as iterative coupling models.  
In the process of shale gas development, as pore pressure decreases, the magnitude of three principal stresses decreases as well,  
and the stress direction will be deflected. Compared to a continuous medium, fractures affect the stress distribution and change  
trends. This stress state evolution will cause deflection of hydraulic fracture propagation of infill wells and Frac-hits, and induce  
a “Microseismic Events Barrier” effect. The study of flow and geomechanical coupling in a shale gas reservoir and hydraulic  
fracture propagation during shale gas field development is a multi-physical, multi-dimensional and multi-scale coupling problem,  
which needs to explore the integrated geological and engineering solutions. Therefore, further research into the mechanism and  
simulation methods of complex fracture propagation during re-fracturing of horizontal wells and hydraulic fracturing of infill  
wells in shale gas reservoirs during stress evolution should be continued. And we suggest to focus on other research, such as the  
mechanism of spatial interference of complex fractures during the three-dimensional development of a shale gas reservoir, the  
optimization of fracturing timing in re-fracturing of parent wells and hydraulic fracturing of infill wells, and the mechanism of  
casing damage in horizontal wells during hydraulic fracturing. These are of great significance to the efficient development of  
shale gas reservoirs in China.


Key words: shale gas reservoir; flow and geomechanical coupling; 4D stress evolution; complex fracture propagation; geological and engineering integration
收稿日期: 2021-09-29 ????
PACS: ? ?
基金資助:國家自然科學(xué)基金面上項目“頁巖儲層射孔簇內(nèi)復(fù)雜三維多裂縫起裂與競爭擴展機理研究”( 編號 51874253) 和國家自然科學(xué)基金聯(lián)合基
金“四川深層頁巖智能傳控靶向復(fù)合壓裂基礎(chǔ)研究”( 編號U20A20265) 聯(lián)合資助
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引用本文: ??
朱海燕, 宋宇家, 唐煊赫. 頁巖氣儲層四維地應(yīng)力演化及加密井復(fù)雜裂縫擴展研究進展. 石油科學(xué)通報, 2021, 03: 396-416 ZHU Haiyan, SONG Yujia, TANG Xuanhe. Research progress on 4-dimensional stress evolution and complex fracture propagation of infill wells in shale gas reservoirs. Petroleum Science Bulletin, 2021, 03: 396-416.
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