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1.
水力压裂是开采地下页岩气资源的有效技术手段,探究页岩水力压裂裂缝的扩展规律,可为页岩气的高效开采提供科学的指导依据。通过运用大型有限元软件ABAQUS中的扩展有限元模块,针对不同地应力差工况条件下均质页岩中初始裂缝的位置、方位角、数量和含层理页岩中层理的构造方向、内部倾角、岩性对水力裂缝扩展的影响进行探究。结果表明:对于垂向扩展的水力裂缝,水平主应力增大使裂缝更不易扩展,裂缝扩展长度减小、起裂压力增大;在注液体积流量相同时,向初始裂缝两端同时起裂所形成的水力裂缝长度大于仅向一侧起裂;当初始裂缝处于页岩中部且呈45°方向时,裂缝会向最大水平主应力方向偏转,且偏转程度随最大水平主应力的增大而增大;分时多簇压裂时,裂缝间的扩展会相互干扰,且会较大地影响裂缝扩展的形态和起裂压力,但对裂缝注液点裂缝宽度的影响较小;对于含水平和竖直构造层理的页岩,改变层理内部倾角,水力裂缝会出现不同程度偏转,且其偏转程度随着层理内部倾角的增大而减小;对于含45°方向构造层理的页岩,水力裂缝在层理分别为砂岩、煤岩和泥岩中的偏转程度依次增大,且裂缝偏移比随着最大水平主应力的增大而增大。  相似文献   

2.
郭静芸  王宇 《工程地质学报》2018,26(6):1523-1533
页岩储层中天然节理、裂缝极为发育,水力压裂产生的水力裂缝可激活天然裂缝,形成复杂的弥散性裂缝缝网,起到增渗、增产的效果;另外,天然裂缝也是页岩气储存的介质,一部分气体以游离态的形式存在于天然裂缝当中。采用数值计算方法研究水力裂缝与天然裂缝的相互作用机理,重点探讨水力裂缝沟通天然裂缝活化延伸形成缝网的机制。计算模型包括单一天然裂缝和3条天然裂缝两种情况,计算变量考虑天然裂缝与水力裂缝的逼近角、主应力差和地层的弹性参数。研究表明:(1)随着逼近角的不同,地层的破裂应力存在一定的差异,逼近角为90°时,地层破裂所需要的临界水压最大,且地层的破裂应力随着主应力差的增大而减小;(2)无论是单一或3条天然裂缝,水力裂缝沟通天然裂缝活化后,分支裂缝的延伸方向基本恢复至与最大水平主应力平行的方向,当逼近角为90°时,裂缝的滑移量最大,激活效果最佳;(3)逼近角为90°时,天然裂缝尖端处容易出现水力裂缝双转向现象,更有利于形成复杂的裂缝网络,并且此时单元破裂数量最大,压裂效果最好;(4)随地层弹性模量的增大或泊松比的减小,激活天然裂缝的临界水压减小,说明储层的弹性属性会影响缝网的形成,在高弹性模量、低泊松比的脆性地层中射孔时会收到较理想的压裂效果。  相似文献   

3.
人工裂缝逼近条件下天然裂缝破坏特征分析   总被引:1,自引:0,他引:1  
《岩土力学》2016,(1):247-255
通过水力压裂裂缝的诱导应力场打开远场天然裂缝,可改变储层应力场,易形成压裂主裂缝、分支缝、应力松弛缝相互连通的裂缝网络,从而提高了页岩气储层改造效率,因此在页岩气开采中具有广阔的应用前景。人工裂缝逼近条件下天然裂缝的破坏特征是人工裂缝诱导应力场激活远场天然裂缝的核心问题之一。应用位移间断法(DDM),建立了人工裂缝逼近条件下激活天然裂缝的力学模型。根据摩尔-库仑破坏准则,建立了不同天然裂缝破坏状态的约束条件,形成了天然裂缝破坏特征的计算方法,并通过算例验证其正确性。在此基础上,模拟了人工裂缝逼近条件下天然裂缝张开、滑移、闭合行为,并研究了其影响因素。结果表明,天然裂缝下表面处最大主应力呈双峰型分布,天然裂缝下表面处最大主拉应力随着天然裂缝与最大水平主应力方向夹角的增加而增大。当人工裂缝逼近天然裂缝时,天然裂缝的剪切型破坏长度大于张拉型。天然裂缝破坏长度随着天然裂缝与最大水平主应力方向夹角的增大而减小,随着缝内净压力的增大而增大。天然裂缝破坏长度随着人工裂缝尖端到天然裂缝的距离的减小而增加。天然裂缝剪切型破坏长度随着摩擦系数及黏聚力的增大而减小。研究结果对页岩气压裂技术具有理论指导意义。  相似文献   

4.
储层岩体中的天然结构面对水力压裂缝网改造具有重要的影响。本文采用真实破裂过程分析软件RFPA2D-Flow,在考虑岩体非均质性和岩体渗流-应力-损伤破裂特性的基础上,对不同尺度天然结构面影响的水力压裂裂缝扩展与演化行为进行了模拟分析和讨论,研究结果表明:(1)当水力裂缝遇天然非闭合裂隙时,在水力裂缝靠近非闭合裂隙区间形成拉张应力区,水力裂缝与区间非闭合裂隙间微元体累进性张拉破坏是导致水力裂缝与非闭合裂隙贯通的主要机制;(2)层理等优势结构对水力压裂裂缝扩展及缝网形态影响十分显著,当最大主应力方向与层理面走向小角度相交时,层理结构面对水力裂隙的扩展起主要作用,当最大主应力方向与层理面走向大角度相交时,最大主压应力与层理面共同对缝网扩展起主导作用,随着优势结构面的增多和差应力的增大,水力压裂形成的缝网范围和复杂性程度随之增大;(3)储层水力压裂是一种局部范围内的短暂动力扰动过程,尽管断层的存在可以极大地影响水力裂缝的扩展模式,增大水力裂隙扩展高度,但相比于储层埋深,水力压裂对断层封闭性的破坏范围和断层活动性的扰动程度十分有限。  相似文献   

5.
随着扩展有限元理论的深入研究,利用扩展有限元方法模拟水力压裂具有了一定的可操作性。相比于常规有限元方法,XFEM方法具有计算结果精度高和计算量小的优点。但是,如何模拟射孔孔眼、如何模拟流体与岩石相互作用以及分析水力裂缝的扩展规律仍然是难题。以研究水力压裂裂缝扩展规律为目的,建立了岩石多孔介质应力平衡方程、流体渗流连续性方程和边界条件。通过有限元离散化方法对耦合方程矩阵进行处理。通过富集函数定义初始裂缝(射孔孔眼),选择最大主应力及损伤变量D分别作为裂缝起裂和扩展判定准则,利用水平集方法模拟水力裂缝扩展过程。数值模拟结果显示:增加射孔方位角、压裂液排量和减小水平地应力差,起裂压力上升;黏度对起裂压力无明显影响。增加射孔方位角、压裂液排量、黏度和减小水平地应力差值有助于裂缝宽度的增加。增加水平地应力差值、压裂液排量和减小射孔方位角以及压裂液黏度有助于裂缝长度增加,反之亦然。基于ABAQUS的水力裂缝扩展有限元法可对不同井型和诸多储层物性参数及压裂施工参数进行分析,且裂缝形态逼真,裂缝面凹凸程度清晰,结果准确。此研究可作为一种简便有效研究水力压裂裂缝扩展规律的方法为油田水力压裂设计与施工提供参考与依据。  相似文献   

6.
张钰彬  黄丹 《岩土力学》2019,40(7):2873-2881
水力压裂技术广泛使用于页岩气开采工程中。为了分析压裂过程中多裂缝扩展形成复杂裂缝网的机制,尝试将态型近场动力学理论引入页岩水平井水力压裂过程的力学建模与数值仿真,在物质点间相互作用力模型中加入等效水压力项以实现在新生裂缝面上跟踪施加水压力,建立了水力压裂过程的近场动力学分析模型。通过模拟页岩储层的水力压裂过程,可得到复杂的裂缝扩展路径、裂缝网络的形成过程以及裂缝扩展受射孔间距及页岩天然裂缝和层理的影响。研究结果表明:射孔间距过小会造成起裂干扰,使中心射孔的裂缝扩展受到抑制;在压裂压力一定的情况下适当增大射孔间距,可以显著增强页岩压裂形成裂缝网的能力;压裂过程中水平层理面可能张开形成水平裂缝,且天然裂缝会诱导形成更复杂的垂直裂缝。模型和方法可为页岩水力压裂过程和机制研究及工程实践提供参考。  相似文献   

7.
张帆  马耕  刘晓  冯丹 《岩土力学》2019,(5):1890-1897
水力压裂是一项广泛应用于低渗煤层的卸压增透技术。为了深入研究煤岩受力、天然裂缝、泵注排量对水力裂缝扩展规律及空间结构的影响,采用大尺寸真三轴水力压裂试验系统、压裂液中添加示踪剂等方式,在真三轴条件下对大尺寸煤岩进行了水力压裂试验。通过剖切压裂试样描述了水力裂缝扩展和空间展布规律,分析了裂缝宽度与应力之间的关系,并初步探讨了煤岩水力裂缝网络的形成机制。结果表明:(1)水力裂缝自割理处起裂并沿割理扩展、连接割理,进而形成复杂的裂缝网络结构;(2)水力裂缝受应力条件作用明显,当最大水平主应力和垂向应力相近,且远大于最小水平主应力时,易形成复杂的裂缝形态;(3)煤岩天然裂隙的存在是形成裂缝网络结构的前提,泵注排量对裂缝网络的形成也有重要影响;(4)煤岩裂隙在局部区域影响水力裂缝转向、分叉,但最终水力裂缝在扩展过程中逐渐转向至最大主应力方向;(5)水力压裂过程中,裂缝宽度的变化不仅与煤岩所受应力有关,还受到压裂液排量、天然裂缝等因素的影响。研究结果可以为煤岩裂缝网络的形成机制、现场施工参数的选取提供技术支持。  相似文献   

8.
采用真三轴物理模型试验机、水力压裂伺服系统、声发射定位系统以及压裂液中添加示踪剂等方式,在真三轴条件下对大尺寸页岩水平井进行了水力压裂物理模拟试验,通过裂缝的动态监测和压裂后剖切等分析了裂缝的扩展规律,并对页岩压裂缝网的形成机制进行了初步探讨。结果表明:(1)水力裂缝自割缝处起裂并扩展、压开或贯穿层理面,形成相对较复杂的裂缝形态;(2)裂缝中既有垂直于层理面的新生水力主裂缝,又有沿弱层理面扩展延伸的次级裂缝,形成了纵向和横向裂缝并存的裂缝网络;(3)水力裂缝在延伸过程中会发生转向而逐渐垂直最小主应力;(4)水力裂缝在扩展过程中遇到弱层理面时的止裂、分叉、穿过和转向现象是形成页岩储层复杂裂缝网络的主要原因,而弱结构面的大量存在是形成复杂裂缝的基础。其研究结果可为页岩气藏水平井分段压裂开采等提供有力技术支持。  相似文献   

9.
页岩储层物性极差,必须通过体积改造形成网状裂缝系统才能实现经济有效开发,掌握页岩地层中诱导裂缝延伸规律是成功实现缝网压裂的基础。借助基于细观损伤力学和弹性力学研发的岩石破裂分析系统RFPA2D,开展了页岩储层在水力压裂过程中的裂缝形成及延伸规律研究。在考虑到地层非均质的前提下,结合页岩本身的力学特性,分析了井周天然裂缝长度及密度对井周诱导缝形成及发展的影响。结果表明,井壁天然裂缝越长、密度越大,其开启可能越大,开启后伴生诱导缝发育程度越高。另外,对不同地应力差下天然裂缝长度影响开展的研究表明,低应力差下,即使天然裂缝较短,也会被打开,伴生诱导缝延伸具有较强的随机性,在天然裂缝长度较长的情况下,伴生诱导缝倾向于沿天然裂缝方向继续发展。  相似文献   

10.
3500 m以深页岩气资源量占整个川南地区总资源量的比例高达86.5%,该区深层页岩气藏构造复杂,压裂形成复杂缝网的难度大,有必要通过数值模拟研究深层页岩气复杂缝网主控因素,对实现川南地区深层页岩气的效益开发具有重要意义。在对川南地区页岩气气田某井的岩芯进行细观尺度下的观察并构建二维裂缝模型的基础上,利用位移间断边界元法(DDM)模拟深层页岩水力压裂过程中水力裂缝与天然裂缝相互作用的物理力学过程,研究主应力、应力差和压裂液排量对裂缝扩展的影响。结果表明:在高应力差条件下缝网的复杂程度和总长度急剧降低,缝网的平均宽度增大,且平均宽度随排量增加而增大的能力变得有限。在高应力差条件下提升压裂液排量,缝网长度的增加以产生新生裂缝为主,同时提升排量对于激活天然裂缝有一定的提升作用,但是效果有限。相比于拉张裂缝,剪切裂缝的形成受主应力和压裂液排量的影响更显著,在高应力差条件下缝网中剪切裂缝的长度急剧降低。随着压裂液的注入,在较低应力差和相同压裂液注入量的情况下,低排量工况下的裂缝长度逐渐大于高排量工况下的裂缝长度。在应力差较高的情况下裂缝扩展的速率较低,同时会使提升排量而形成更多新生裂缝的能力变得有限。基于显微镜观察构建的裂缝模型计算出的结果能够较好地符合场地实际,为深层水力压裂设计和施工提供参考。  相似文献   

11.
潘林华  程礼军  张烨  张士诚  王飞 《岩土力学》2015,36(12):3639-3648
页岩储层孔隙度和渗透率极低,天然裂缝和水平层理发育,常规压裂增产措施无法满足页岩气的开发要求,水平井多段分簇压裂是页岩气开发的关键技术之一,该技术能够大幅度提升压裂改造的体积、产气量和最终采收率。为确定页岩储层水平井多段分簇射孔压裂的起裂点和起裂压力,采用有限元方法建立了水平井套管完井(考虑水泥环和套管的存在)多段分簇射孔的全三维起裂模型。数值模型的起裂压力与室内试验结果吻合较好,证明了数值模型的准确性和可靠性。利用数值模型研究了页岩水平井多段分簇射孔压裂的起裂点和起裂压力的影响因素,研究发现:射孔孔眼附近无天然裂缝或水平层理影响,起裂点发生在射孔簇孔眼的根部;射孔簇间距越小,中间射孔簇的干扰越大,可能造成中间的射孔簇无法起裂;射孔密度和孔眼长度增大,起裂压力降低;天然裂缝的存在,在某些情况能够降低起裂压力且改变起裂位置,主要与天然裂缝的分布方位及水平主应力差有关;水平层理可能会降低起裂压力,但与垂向主应力与水平最小主应力的差值有关。获得的起裂压力变化规律,可作为进一步研究水平井多段分簇射孔条件下的裂缝扩展规律的基础,可以为压裂设计和施工的射孔参数确定及优化给出具体建议。  相似文献   

12.
The multi-stage fracturing in horizontal well is a common technique for shale gas reservoir exploitation, in which cluster spacing governs the fracturing performance. Undersized cluster spacing might make the stimulated reservoir volume (SRV), activated by the respective hydraulic fracture, excessively overlap with each other, while oversized cluster spacing might leave a large unstimulated volume between neighboring hydraulic fractures; in either case, fracturing would be inefficient. Previous design of cluster spacing has failed to maximize the SRV due to the absence of a dynamic SRV evaluation model. A numerical model of SRV evaluation in shale reservoir was established by integrating four main modules, including fracture propagation, reservoir pressure distribution, formation stress distribution, and natural fracture failure criterion. Then, a method to optimize cluster spacing was developed with the goal of maximizing SRV. In order to validate this method, it was applied in Fuling shale gas reservoir in Southwest China to determine the optimal cluster spacing. The sensitivity of key parameters on the optimal cluster spacing has been analyzed. This research proposed a compelling cluster spacing optimization method, which could reduce the uncertainty in cluster spacing design, and provides some new insights on the optimal design of multi-stage fracturing in horizontal shale gas well.  相似文献   

13.
郭建春  李根  周鑫浩 《岩土力学》2016,37(11):3123-3129
页岩气藏一般具有低孔隙、低渗透等特征,对其实施缝网压裂是高效开发页岩气的最佳途径。采用位移不连续法建立线弹性二维均质地层诱导应力场分布数学模型,通过水平应力差异系数对顺序压裂和交替压裂的裂缝间距进行优化研究。结果表明,水平应力差异系数受到裂缝净压力、裂缝缝长、原地应力场等因素的影响;裂缝净压力越大、缝长越长,水平应力差异系数越小;随着与裂缝距离的增加,水平应力差异系数呈现先减小后增加的趋势,因此,存在后续裂缝形成复杂网络的最佳裂缝间距;顺序压裂裂缝间距不宜过大,且后续压裂裂缝间距应适当减小;交替压裂裂缝间距最优时,缝间水平应力差异系数最小,对中间裂缝形成缝网最有利。  相似文献   

14.
Researchers have recently realized that the non-tectonic natural fractures are developed in shale formations and significant for the exploitation of shale gas. Studies have shown that the tectonic fractures in naturally fractured reservoirs have influences on the maximization of stimulated reservoir volume (SRV) during hydraulic fracturing. However, the effect of the non-tectonic randomly natural fractures on the fracturing network propagation is not well understood. Laboratory experiments are proposed to study the evolution of fracturing network in naturally fractured formations with specimens that contain non-tectonic random fractures. The influences of the dominating factors were studied and analyzed, with an emphasis on natural fracture density, stress ratio, and injection rate. The response surface methodology was employed to perform the multiple-factor analysis and optimization in the maximization of the SRV. A sensitivity study reveals a number of interesting observations resulting from these parameters on the fracturing network evaluation. It is suggested from the geometry morphology of fracturing network that high natural fracture density and injection rate tend to maximize the fracturing network. The influence of stress contrast on fracturing network is nonlinear; an optimal value exists resulting in the best hydraulic fracturing effectiveness.  相似文献   

15.
为有效模拟裂缝性页岩储层中水力裂缝随机扩展过程,基于单元节点的拓扑数据结构,利用网格节点分裂方式,建立了一种基于有限元网格嵌入零厚度内聚力单元的水力裂缝随机扩展新方法。利用KGD模型解析解和2种室内试验,验证了新方法的准确性和有效性。同时,通过数值算例研究了水平地应力差和储层非均质性对水力裂缝随机扩展过程的影响。研究表明:(1)该方法弥补了ABAQUS平台内置的内聚力单元无法有效模拟水力裂缝随机扩展的不足;(2)在较高水平地应力差下页岩储层非均质性越强,与水力裂缝相交的高角度天然裂缝越容易开启。所建方法能准确地描述复杂水力裂缝的随机扩展行为,可为裂缝性页岩储层的数值模拟提供新手段。  相似文献   

16.
Liao  Jianxing  Gou  Yang  Feng  Wentao  Mehmood  Faisal  Xie  Yachen  Hou  Zhengmeng 《Acta Geotechnica》2020,15(2):279-295

Although hydraulic fracturing has been massively studied and applied as a key technique to enhance the gas production from tight formations, some problems and uncertainties exist to accurately predict and analyze the fracture behavior in complex reservoirs, especially in the naturally fractured reservoirs like shale reservoirs. This paper presents a full 3D numerical model (FLAC3D) to study hydraulic fracturing behavior under the impact of preexisting orthogonal natural fractures. In this numerical model, the hydraulic fracture propagation direction is assumed perpendicular to the minimum principal stress and activated only by tensile failure, whereas the preexisting natural fractures can be activated by tensile or shear failure or a combination of them, and only tensile failure can open the natural fracture as well. The newly developed model was used to study the impact of preexisting orthogonal natural fractures on hydraulic fracturing behavior, based on a multistage hydraulic fracturing operation in a naturally fractured reservoir from the Barnett Shale formation, northwest of Texas in USA. In this multistage operation, two more representative stages, i.e., stage 1 with a relatively large horizontal stress anisotropy of 3.3 MPa and stage 4 with a comparatively small one of 1.3 MPa, were selected to conduct the simulation. Based on the numerical results, one can observe that the interaction between hydraulic and natural fracture is driven mainly by induced stress around fracture tip. Besides, the horizontal stress anisotropy plays a key role in opening the natural fracture. Thus, no significant opened fracture is activated on natural fracture in stage 1, while in stage 4 an opened fracture invades to about 90 m into the first natural fracture. Conversely, the hydraulic fracture length in stage 1 is much longer than in stage 4, as some fluid volume is stored in the opened natural fracture in stage 4. In this work, the shear failure on natural fractures is treated as the main factor for inducing the seismic events. And the simulated seismic events, i.e., shear failure on natural fractures, are very comparable with the measured seismic events.

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17.
The ultra-low-permeability shale gas reservoir has a lot of well-developed natural fractures. It has been proven that hydraulic fracture growth pattern is usually a complex network fracture rather than conventional single planar fractures by micro-seismic monitoring, which can be explained as the shear and tensile failure of natural fractures or creation of new cracks due to the increase in reservoir pore pressure caused by fluid injection during the process of hydraulic fracturing. In order to simulate the network fracture growth, a mathematical model was established based on full tensor permeability, continuum method and fluid mass conservation equation. Firstly, the governing equation of fluid diffusivity based on permeability tensor was solved to obtain the reservoir pressure distribution. Then Mohr–Coulomb shear failure criterion and tensile failure criterion were used to decide whether the rock failed or not in any block on the basis of the calculated reservoir pressure. The grid-block permeability was modified according to the change of fracture aperture once any type of rock failure criterion was met within a grid block. Finally, the stimulated reservoir volume (SRV) zone was represented by an enhancement permeability zone. After calibrating the numerical solution of the model with the field micro-seismic information, a sensitivity study was performed to analyze the effects of some factors including initial reservoir pressure, injection fluid volume, natural fracture azimuth angle and horizontal stress difference on the SRV (shape, size, bandwidth and length). The results show that the SRV size increases with the increasing initial pore reservoir and injection fluid volume, but decreases with the increase in the horizontal principal stress difference and natural fracture azimuth angle. The SRV shape is always similar for different initial pore reservoir and injection fluid volume. The SRV is observed to become shorter in length and wider in bandwidth with the decrease in natural fracture azimuth angle and horizontal principal stress difference.  相似文献   

18.
The production efficiency of shale gas is affected by the interaction between hydraulic and natural fractures. This study presents a simulation of natural fractures in shale reservoirs, based on a discrete fracture network (DFN) method for hydraulic fracturing engineering. Fracture properties of the model are calculated from core fracture data, according to statistical mathematical analysis. The calculation results make full use of the quantitative information of core fracture orientation, density, opening and length, which constitute the direct and extensive data of mining engineering. The reliability and applicability of the model are analyzed with regard to model size and density, a calculation method for dominant size and density being proposed. Then, finite element analysis is applied to a hydraulic fracturing numerical simulation of a shale fractured reservoir in southeastern Chongqing. The hydraulic pressure distribution, fracture propagation, acoustic emission information and in situ stress changes during fracturing are analyzed. The results show the application of fracture statistics in fracture modeling and the influence of fracture distribution on hydraulic fracturing engineering. The present analysis may provide a reference for shale gas exploitation.  相似文献   

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