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首頁(yè)» 過(guò)刊瀏覽» 2020» Vol.5» Issue(3) 366-375???? DOI : 10.3969/ j.issn.2096-1693.2020.03.031
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四川頁(yè)巖氣水力壓裂誘發(fā)斷層滑動(dòng)和套管變形風(fēng)險(xiǎn)評(píng)估
范宇,,黃銳,,曾波 ,,陳朝偉,,周小金 ,項(xiàng)德貴,,宋毅
1 中國(guó)石油股份有限公司西南油氣田分公司頁(yè)巖氣研究院,,成都 610051 2 中國(guó)石油集團(tuán)工程技術(shù)研究院有限公司,,北京 102206 3 中國(guó)石油大學(xué)(北京)石油工程學(xué)院,,北京 102249
Fault slip induced by hydraulic fracturing and risk assessment of casing deformation in the Sichuan Basin
FAN Yu , HUANG Rui, ZENG Bo , CHEN Zhaowei , ZHOU Xiaojing , XIANG Degui , SONG Yi
1 Shale Gas Research Institute of PetroChina Southwest Oil & Gas Field Company, Chengdu 610051, China 2 CNPC Engineering Technology R&D Company Limited, Beijing 102206, China

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摘要? 四川盆地長(zhǎng)寧—威遠(yuǎn)國(guó)家級(jí)頁(yè)巖氣示范開(kāi)發(fā)區(qū)在水力壓裂施工期間發(fā)生了嚴(yán)重的套管變形,,給壓裂施工 及后續(xù)生產(chǎn)作業(yè)帶來(lái)了嚴(yán)重影響,。為厘清套管變形問(wèn)題原由,,探尋解決途徑,本文以四川盆地長(zhǎng)寧—威遠(yuǎn)區(qū)塊 H平臺(tái)為實(shí)例研究對(duì)象,,觀察該平臺(tái)的套管變形分布情況,,識(shí)別斷層產(chǎn)狀,建立地質(zhì)力學(xué)模型,,并分析水力壓 裂施工下斷層滑動(dòng)的風(fēng)險(xiǎn)概率,。H平臺(tái)套管變形位置與螞蟻體斷層、微地震信號(hào)之間的相關(guān)性分析表明,,水力 壓裂誘發(fā)的斷層滑動(dòng)可能是造成套管發(fā)生變形的原因,,且MIT多臂井徑測(cè)井顯示套管變形形狀呈S型剪切變形, 該變形特征與斷層上下兩盤相對(duì)錯(cuò)動(dòng)的剪切特征一致,。由此,,基于該區(qū)塊的地質(zhì)構(gòu)造特征,以螞蟻體技術(shù)識(shí)別 的斷層為主體,,以微地震信號(hào)解釋的斷層為補(bǔ)充,,全面觀察斷層產(chǎn)狀并建立斷層模型,。分析該區(qū)塊的常規(guī)測(cè)井、 成像測(cè)井和小型壓裂測(cè)試等數(shù)據(jù),,獲取該區(qū)塊的地應(yīng)力及孔隙壓力,,建立該區(qū)塊地質(zhì)力學(xué)模型。利用摩爾庫(kù)倫 準(zhǔn)則分析斷層在水力壓裂施工后的激活狀態(tài),,并應(yīng)用定量風(fēng)險(xiǎn)分析(QRA)評(píng)價(jià)斷層滑動(dòng)風(fēng)險(xiǎn)高低及各因素對(duì)斷 層滑動(dòng)的敏感性,。分析結(jié)果表明,該平臺(tái)大部分?jǐn)鄬釉诂F(xiàn)今地應(yīng)力狀態(tài)下均接近臨界應(yīng)力狀態(tài),,處于優(yōu)勢(shì)滑動(dòng) 方位的斷層在當(dāng)前施工條件下容易被激活,。在水力壓裂誘發(fā)的孔隙壓力擾動(dòng)值為 17 MPa情況下,與套管變形井 段相交斷層的滑動(dòng)概率最低達(dá) 65%,,證明大部分套管變形的確是由水力壓裂誘發(fā)的斷層滑動(dòng)所引起,。在本例分 析中,孔隙壓力和摩擦系數(shù)對(duì)斷層滑動(dòng)風(fēng)險(xiǎn)結(jié)果的影響最大,,將兩者的誤差控制到最小可以使風(fēng)險(xiǎn)評(píng)估模型預(yù) 測(cè)的結(jié)果更準(zhǔn)確,。綜上,基于此風(fēng)險(xiǎn)評(píng)估結(jié)果,,可以識(shí)別水力壓裂施工下斷層滑動(dòng)風(fēng)險(xiǎn)的高低,,為優(yōu)化井眼軌 跡設(shè)計(jì)以減緩套管變形提供參考,該方法可能為解決套管變形問(wèn)題提供一種有效的分析方法,。
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關(guān)鍵詞 : 套管變形,;水力壓裂,;斷層滑動(dòng);風(fēng)險(xiǎn)評(píng)估,;減緩套變
Abstract

Serious casing deformation occurred during hydraulic fracturing in Changning-Weiyuan national shale gas demon stration area, Sichuan Basin, which has seriously impacted on fracturing and subsequent production. In order to clarify the cause of casing deformation occurring during hydraulic fracturing and to explore how to mitigate casing deformation, we take the H pad located in the Changning-Weiyuan shale gas area as the research object, observing the distribution of casing deformation, identifying the orientation and dip of faults, establishing the geomechanical model, and assessing the slip probability of faults under hydraulic fracturing operations. The correlational analysis between the positions of the casing deformation and ant tracking faults and microseismic events shows that the fault slip induced by hydraulic fracturing might be the cause of casing deformation. The multi-arm caliper logging shows that the casing deformation is S-shaped shear deformation, which is consistent with the shear characteristics of a fault slip. Based on the geological structure of this block, the fault model was established by taking the faults interpreted by ant tracking as the main body and the fault interpreted by microseismic events as the supplement. The data of conventional logging, image logging and mini- fracturing were analyzed to obtain the in-situ stress and pore pressure, and to establish the geomechanical model. The Mohr-Coulomb criterion was used to analyze the activation states of these faults, and the QRA method (Quantitative Risk Analysis) was used to analyze the slip risk of faults and the sensitivity of each factor on fault slip. The results show that most of the faults in this pad are in a critical stress state under the in-situ conditions, and the well-oriented faults can easily be activated under current pumping pressure. The slip probability of the faults which intersect the casing deformation section is up to 65% under a pressure increase of 17 MPa, which shows the casing deformation can be caused by fault slip induced by hydraulic fracturing. In this case, the pore pressure gradient and friction coefficient have the greatest influence on the results. The prediction results of the model will be more accurate if the pore pressure and friction coefficient are estimated more precisely. Based on the risk assessment results, the slip risk of faults can be calculated, which can provide reference for optimizing well trajectory design to mitigate casing deformation. This method may provide an effective method for minimizing casing deformation problems .           


Key words: casing deformation; hydraulic fracturing; fault slip; risk assessment; mitigating casing deformation
收稿日期: 2020-09-29 ????
PACS: ? ?
基金資助:國(guó)家科技重大專項(xiàng)“頁(yè)巖氣水平井體積壓裂及排采技術(shù)研究與試驗(yàn)”(2016ZX05062004),、國(guó)家科技重大專項(xiàng)“工廠化鉆井技術(shù)研究與集
成應(yīng)用”(2016ZX05022001) 和國(guó)家科技重大專項(xiàng)“深井超深井”高效快速鉆井技術(shù)及裝備(2016ZX05020002) 聯(lián)合資助
通訊作者: [email protected]
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FAN Yu, HUANG Rui, ZENG Bo, CHEN Zhaowei, ZHOU Xiaojing, XIANG Degui, SONG Yi. Fault slip induced by hydraulic fracturing and risk assessment of casing deformation in the Sichuan Basin. Petroleum Science Bulletin, 2020, 03: 366-375.
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