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首頁» 過刊瀏覽» 2021» Vol.6» Issue(2) 245-261???? DOI : 10.3969/j.issn.2096-1693.2021.02.019
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考慮井筒加載歷史的壓裂過程中套管剪切變形數(shù)值模擬研究
李曉蓉,古臣旺 ,,馮永存,,丁澤晨
1 中國石油大學(xué)(北京)安全與海洋工程學(xué)院,北京 102249 2 中國石油大學(xué)(北京)石油工程學(xué)院,,北京 102249
Numerical study of shear deformation of casings during hydraulic fracturing considering wellbore loading history
LI Xiaorong1 , GU Chenwang , FENG Yongcun, DING Zechen
1 College of Safety and Ocean Engineering, China University of Petroleum-Beijing, Beijing 102249, China 2 College of Petroleum Engineering, China University of Petroleum-Beijing, Beijing 102249, China

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摘要? 體積壓裂技術(shù)作為致密油氣開發(fā)的重要技術(shù)手段,,在實現(xiàn)儲層有效改造的同時,,也可能帶來套管變形失 效的問題,,其主要失效原因之一是水力壓裂誘發(fā)的斷層激活和界面滑移造成套管剪切變形和破壞,。本文首先通 過研究壓裂液進(jìn)入斷層的不同模式,闡釋了體積壓裂誘發(fā)斷層激活理論,,為分析斷層滑移量對套管變形的影響 提供了理論依據(jù),。其次,本文建立了考慮水力壓裂過程中斷層滑動引起套管剪切變形的新模型,,模型創(chuàng)新性地 考慮了井筒全生命周期加載歷史(鉆井,、下套管、注水泥,、水泥漿固化,、水力壓裂)對套管變形的影響。最后,, 利用建立的模型,,量化分析了不同工程和地質(zhì)條件下(壓裂液壓力、斷層傾角,、裂縫長度、套管壁厚和水泥環(huán)彈 性模量),,斷層滑移后套管內(nèi)徑的變化規(guī)律,。結(jié)果表明,斷層的滑動會對套管產(chǎn)生剪切作用從而產(chǎn)生套管縮徑,, 導(dǎo)致套管發(fā)生屈服破壞,。隨著斷層長度的增加,,套管剪切變形程度也隨之增大,當(dāng)斷層長度為 80 m時,,套管的 縮徑量達(dá)到 11.95 mm,。隨著壓裂液壓力的不斷增大,套管剪切變形程度也隨之增大,,當(dāng)流體壓力為 80 MPa時,, 套管縮徑量最大達(dá)到了 9.94 mm。斷層傾角在 30°左右時,,套管縮徑量最大可達(dá) 9.53 mm ,。增大套管的壁厚和水 泥環(huán)的彈性模量,對套管縮徑量的改善效果并不明顯,。因此,,在井眼軌跡設(shè)計的過程中應(yīng)盡量避免井眼穿越斷 層,壓裂設(shè)計時應(yīng)避開大尺寸斷層區(qū)域,;同時,,應(yīng)該合理設(shè)計壓裂液的泵入速度,盡可能使其保持在較低的值,, 以降低流體壓力,。該研究所建立的考慮井筒加載歷史的數(shù)值模型可以更加全面地解釋頁巖氣井多階段壓裂過程 中斷層滑動后套管剪切變形情況,為工程作業(yè)提供指導(dǎo)意義,。
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關(guān)鍵詞 : 體積壓裂,;斷層滑移,;套管剪切變形;全生命周期,;井筒完整性
Abstract
The volume fracturing technique is one of the key methods of shale gas development. It, can cause the problems of  
casing deformation while facilitating shale gas development. The main reasons for the casing deformation are fault activation  
and interface slippage induced by hydraulic fracturing. Firstly, this paper explains the mechanism of fault activation induced by  
hydraulic fracturing by analyzing the different modes of fracturing fluid entering the fault, which provides a theoretical basis for  
analyzing the influence of fault activation on casing deformation. Secondly, a new model considering the shear deformation of  
casing caused by fault activation and interrupted layer slippage during the hydraulic fracturing is established. The model innova
tively considers casing loading history within the full life cycle of wells, including drilling, casing running, cementing, cement  
slurry hardening, hydraulic fracturing, production, and injection. Finally, a parametric study is performed to determine the effects  
of fracturing fluid pressure, fault dip, fracture length, casing thickness, and cement sheath property on shear deformation of  
casing. The results show that fault sliding will produce a shear force acting on the casing system which will result in a reduction  
in the casing diameter. Eventually, it may lead to the shear failure of the casing. As the length of the fault increases, the degree of  
casing shear deformation also increases. When the length of the fault is 80m, the shrinkage of the casing reaches 11.95 mm. With  
a continuous increase of fracturing fluid pressure, the degree of shear deformation of the casing also increases. When the fluid  
pressure is 80 MPa, the maximum casing diameter reduction reaches 9.94mm. When the fault dip is about 30°, the casing diame
ter shrinks the most, up to 9.53 mm. However, increasing the casing thickness and the elastic modulus of the cement sheath does  
not significantly improve the shrinkage of the casing. Therefore, well trajectory should be prevented from crossing large faults  
during well structure designing, and large-scale fault areas should be avoided during hydraulic fracturing design. Meanwhile, the  
pumping speed of fracturing fluid should be reasonably designed to keep it as low as possible to reduce fluid pressure. This work  
is helpful for understanding the mechanism of shear deformation of casings induced by fault activation and interrupted layer  
slippage during multi-stage hydraulic fracturing in shale gas, which also provides guidance for engineering operations.


Key words: volume fracturing; fault slip; shear deformation of casings; life cycle; wellbore integrity
收稿日期: 2021-06-30 ????
PACS: ? ?
基金資助:國家自然科學(xué)基金青年項目“分布式光纖聲傳感(DAS) 監(jiān)測水泥環(huán)完整性研究”(52004298) 資助
通訊作者: [email protected]
引用本文: ??
李曉蓉, 古臣旺, 馮永存, 丁澤晨. 考慮井筒加載歷史的壓裂過程中套管剪切變形數(shù)值模擬研究. 石油科學(xué)通報, 2021, 02: 245-261 LI Xiaorong, GU Chenwang, FENG Yongcun, DING Zechen. Numerical study of shear deformation of casings during hydraulic fracturing considering wellbore loading history. Petroleum Science Bulletin, 2021, 02: 245-261.
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