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1.
为了研究深部煤体在开采扰动影响下的渗透率演化规律,以三向应力条件下的煤体渗透率模型为基础,从吸附解吸作用引起裂隙变形和损伤破裂造成煤基质弹性模量劣化的角度进行理论推导,引入内膨胀应变系数的概念,同时基于Drucker-Prager破坏准则的损伤本构关系建立了两种考虑煤体损伤破裂的渗透率演化模型——指数型和立方型,并且对常规三轴加载、开采扰动加卸载和改变气体压力下的瓦斯渗透试验结果进行了拟合分析。结果表明:所构建的两种模型可以较好地反映常规三轴加载和开采扰动加卸载下煤体渗透率的分区段变化特征,也可以描述有效围压恒定条件下煤体渗透率随气体压力升高而降低的规律。在开采扰动加卸载和改变气体压力的试验中,指数型的拟合效果略优于立方型。研究结果可为深部煤炭开采及瓦斯抽采的工作提供指导。  相似文献   

2.
煤层处置CO2 的二元气- 固耦合数值模拟   总被引:2,自引:0,他引:2  
利用不可开采煤层处置二氧化碳可以有效控制温室气体的排放量并可驱动和增加煤层气资源的开采量。二氧化碳注入煤层处置后引入一个复杂的CH4-CO2二元气体与煤体的气固耦合问题,耦合了二元气体竞争吸附、竞争扩散,气体渗流以及煤体变形过程。基于COMSOL Multiphysics建立了二元气固耦合的有限元数值模型,并应用数值模拟实验对二元气固耦合进行了机理分析。模拟结果表明,CO2注入煤层后不断驱替CH4,CH4组分明显减少;气体吸附引起的煤层膨胀量可以抵消部分有效应力引起的压缩变形,由于CH4-CO2二元气体较单一CH4引起的煤层吸附膨胀量大,二氧化碳注入煤层后可以缓解煤层的压缩变形;不同孔隙压力条件下,吸附膨胀与孔隙压力两者竞争作用引起的煤层净变形不同,而净变形也控制着煤层孔隙压力和渗流率的变化,煤层渗透整体呈现先降后升,模拟进行到4.66×107 s时煤层渗透率发生反弹。  相似文献   

3.
《岩土力学》2015,(12):3439-3446
气体运移引起煤体变形是研究煤层气抽采、预防瓦斯突出与温室气体的地质封存的核心问题。一般认为,有效应力变化是控制岩土类材料骨架变形的关键因素。但大量测试结果表明,煤的渗透率与有效应力(或者孔隙压力)表现出非线性关系。为此,应实时观测在静孔隙压力与三轴应力状态下氦气流动导致原煤变形演化全过程。在静孔隙压力状态下煤体积经历从收缩到回弹过程。注气压力越大,煤的收缩与回弹量越大,且收缩量总是大于回弹量。在三轴应力状态下注气初期煤样迅速膨胀。随着注气达到平衡状态,煤变形过程与约束条件表现出紧密相关性,即在应力约束下煤的膨胀率相比注气初期明显减缓;在位移约束下煤由膨胀转向收缩。上述试验结果表明,仅有孔隙压力作用下,煤基质与裂隙之间孔隙压力差可以压缩煤体,随着气体扩散的进行,可恢复煤的部分压缩变形量。在三轴应力状态下,煤的总体变形是裂隙与基质两者变形共同作用的结果。在应力约束下煤基质与裂隙可以自由膨胀。而煤体在位移约束下,因气体扩散导致煤基质膨胀只能挤压裂隙。根据上述实测结果探讨注气导致煤骨架变形演化机制,为深入理解煤裂隙与基质相互作用对煤渗透率演化提供试验依据。  相似文献   

4.
《岩土力学》2019,(11):4289-4298
为了探究采掘扰动和温度变化对工作面前方煤体渗透率的影响,将引起煤体裂隙变形的因素划分为有效应力、吸附解吸和热膨胀3部分。基于损伤力学、吸附理论和热应力理论推导出了采掘扰动与温度耦合作用下煤体裂隙应变表达式,进而构建了采掘扰动与温度耦合影响下工作面前方煤体渗透率模型。结合改变温度、同时改变扰动应力和温度的两种渗透率试验结果对所建立的模型适用性进行了拟合分析,并对模型中的参数敏感性进行了讨论。结果表明:所构建的煤体渗透率模型可以较好地描述采掘扰动与温度耦合影响下煤体渗透率的演化过程;在同一温度下,煤体渗透率随着内膨胀应变系数的增大而增大,随着热内膨胀应变系数的增大而减小。研究结果可为煤炭开采及瓦斯抽采的工作提供指导。  相似文献   

5.
CO2-ECBM中气固作用对煤体应力和强度的影响分析   总被引:3,自引:0,他引:3  
基于固体表面能下降是引起固体膨胀的动力源的理论,给出了煤体吸附CH4和CO2后的膨胀应力的计算公式,对CO2和CH4吸附引起的膨胀进行了计算和分析,为评估CO2注入煤层后吸附引起的膨胀对煤层力学稳定性的影响提供了理论依据。取Griffith断裂理论中临界应力为煤体强度指标,给出了煤体吸附气体后强度下降的计算公式,对煤体自由膨胀条件下吸附CH4和CO2强度降低的情况进行了对比分析。  相似文献   

6.
基于吸附势理论、气体状态方程,建立了煤储层压力与煤体吸附半径、孔隙半径与煤体吸附量、储层压力与煤体吸附量之间的关系模型,得出储层压力、吸附量、孔隙半径等多参数耦合的煤层气吸附量动态变化模型,利用潘庄区块煤体结构测试数据以及等温吸附试验结果对模型进行了验证。结果表明:潘庄区块以孔径小于7.7 nm的微孔为主,以孔径7.7 nm为临界点孔容呈先减小后增大趋势;模型计算的吸附量动态变化结果与煤体空气干燥基等温吸附变化结果在趋势上具有较高的一致性,模型的起始点为枯竭压力以及枯竭吸附量,得出潘庄区块枯竭吸附量为3 m3/t。模型不仅能够计算地层条件下不同温度和压力共同作用下煤体对甲烷气体的吸附量,且能够预测煤层气排采过程煤层气吸附量的动态变化,有助于确定煤层气排采工作制度以及提高煤层气采收率。   相似文献   

7.
空化水射流热效应影响煤体渗透率试验研究   总被引:1,自引:0,他引:1  
卢义玉  丁红  葛兆龙 《岩土力学》2014,35(5):1247-1254
对空化水射流空泡溃灭瞬间和空化噪声声场作用产生的热效应进行了分析,得到了热效应作用下的煤体渗透率表达式,并开展了不同空化条件(泵压、空化腔围压)下的煤体温度和瓦斯渗流试验。结果表明:空化腔围压一定时,温度随泵压的增大而升高;而泵压一定时,温度随空化腔围压的增大而减小。当热应力大于平均有效应力时,煤体热膨胀出现微变形,产生的张应力使裂隙变宽、数量增多;热效应使得游离瓦斯内能增加,分子自由程大大缩短,同时吸附瓦斯解吸使得煤基质发生收缩效应,导致微孔隙及微裂隙结构产生膨胀变形,从而影响煤体渗透率。试验得到渗透率随温度升高呈指数规律增大,与理论得到的渗透率表达式描述的规律相符。  相似文献   

8.
王春光  陈连军  王长盛 《岩土力学》2014,35(4):1015-1024
开展原煤在热-力作用下煤热膨胀与吸附瓦斯解吸研究对于深入理解深部煤岩失稳破坏机制有重要意义。通过对四川白皎矿和徐州张双楼矿的原煤施加不同温度-应力条件,获取煤的热变形、解吸气体运移以及煤的力学性质的热响应。试验结果表明:白皎煤在低于35℃条件下表现为膨胀变形;在高于35℃恒温环境下,煤体变形表现为先膨胀后收缩趋势。张双楼煤在低于60℃条件下表现为先膨胀后会出现收缩;在高于60℃恒温环境下,煤样趋向整体膨胀。其结果说明,煤岩在热环境中的变形行为取决于煤基质的热膨胀与解吸收缩之间的竞争结果。煤吸热升温后孔隙中解吸气体数量增多,煤样在受载压缩变形过程中显现出复杂解吸气体排放特征,包括煤中原生孔隙裂隙压缩闭合排出气体,煤体内不均匀变形导致气体流动,煤体开裂导致气体回流。力学测试结果表明,煤样的单轴抗压强度以及弹性模量随着环境温度上升均表现出下降趋势。其结果为深入理解深部煤层在热-力耦合下渗透率与强度变化机制提供试验依据。  相似文献   

9.
含瓦斯煤孔隙率和有效应力影响因素试验研究   总被引:1,自引:0,他引:1  
陶云奇  许江  彭守建  袁梅 《岩土力学》2010,31(11):3417-3422
以孔隙率基本定义和力学平衡原理为出发点,充分考虑由煤层瓦斯的吸附膨胀和解吸收缩、温度效应的热胀冷缩和煤体骨架受孔隙瓦斯压力的压缩共同引起的本体变形,建立了在压缩条件下(扩容前)的含瓦斯煤孔隙率动态演化模型和以吸附热力学参数及瓦斯压力表达的有效应力方程,并分别根据现场实测孔隙率数据和含瓦斯煤三轴应力试验数据,对所建立的理论模型进行了验证。结果表明,理论计算值与实测资料和试验结论一致性较好,理论模型拟合精度较好,误差不大,所得结论对煤层气开采和矿井瓦斯灾害防治具有一定的指导意义。  相似文献   

10.
王刚  王锐  武猛猛  王鹏飞  周煜明 《岩土力学》2016,37(Z1):537-546
为了研究在渗透压-应力耦合作用下围压和瓦斯压力对煤体变形破坏规律的影响,借助PFC2D软件进行了340组抗压及抗拉试验模拟,建立了煤体宏观力学参数与细观参数之间的关系。利用平行黏结模型和推导得出的细观参数,对煤体进行了不同围压和瓦斯压力条件下常规三轴试验的颗粒流模拟,并将模拟结果与物理试验结果进行对比及误差分析,对煤体宏观力学参数的变化规律进行了总结。分析结果表明,经过推导得到的宏细观参数关系,可以控制模拟结果的误差在10%之内,能较好地模拟煤体的力学特征;围压增大时,煤体的抗压强度、残余强度及弹性模量呈增大趋势,泊松比以及煤体的破裂角度变小,与物理试验所得围压对煤体的刚度和强度起增强作用的结论一致;瓦斯压力的升高会导致煤体抗压强度,残余强度及弹性模量减小,泊松比以及煤体破裂角度变大,验证了物理试验中瓦斯压力对煤体强度具有劣化作用的结论。  相似文献   

11.
A theoretical model for gas adsorption-induced coal swelling   总被引:6,自引:2,他引:6  
Swelling and shrinkage (volumetric change) of coal during adsorption and desorption of gas is a well-known phenomenon. For coalbed methane recovery and carbon sequestration in deep, unminable coal beds, adsorption-induced coal volumetric change may cause significant reservoir permeability change. In this work, a theoretical model is derived to describe adsorption-induced coal swelling at adsorption and strain equilibrium. This model applies an energy balance approach, which assumes that the surface energy change caused by adsorption is equal to the elastic energy change of the coal solid. The elastic modulus of the coal, gas adsorption isotherm, and other measurable parameters, including coal density and porosity, are required in this model. Results from the model agree well with experimental observations of swelling. It is shown that the model is able to describe the differences in swelling behaviour with respect to gas species and at very high gas pressures, where the coal swelling ratio reaches a maximum then decreases. Furthermore, this model can be used to describe mixed-gas adsorption induced-coal swelling, and can thus be applied to CO2-enhanced coalbed methane recovery.  相似文献   

12.
Coal swelling/shrinkage during gas adsorption/desorption is a well-known phenomenon. For some coals the swelling/shrinkage shows strong anisotropy, with more swelling in the direction perpendicular to the bedding than that parallel to the bedding. Experimental measurements performed in this work on an Australian coal found strong anisotropic swelling behaviour in gases including nitrogen, methane and carbon dioxide, with swelling in the direction perpendicular to the bedding almost double that parallel to the bedding. It is proposed here that this anisotropy is caused by anisotropy in the coal's mechanical properties and matrix structure. The Pan and Connell coal swelling model, which applies an energy balance approach where the surface energy change caused by adsorption is equal to the elastic energy change of the coal solid, is further developed to describe the anisotropic swelling behaviour incorporating coal property and structure anisotropy. The developed anisotropic swelling model is able to accurately describe the experimental data mentioned above, with one set of parameters to describe the coal's properties and matrix structure and three gas adsorption isotherms. This developed model is also applied to describe anisotropic swelling measurements from the literature where the model was found to provide excellent agreement with the measurement. The anisotropic coal swelling model is also applied to an anisotropic permeability model to describe permeability behaviour for primary and enhanced coalbed methane recovery. It was found that the permeability calculation applying anisotropic coal swelling differs significantly to the permeability calculated using isotropic volumetric coal swelling strain. This demonstrates that for coals with strong anisotropic swelling, anisotropic swelling and permeability models should be applied to more accurately describe coal permeability behaviour for both primary and enhanced coalbed methane recovery processes.  相似文献   

13.
白冰  李小春  刘延锋  方志明  张勇 《岩土力学》2006,27(11):1974-1976
引入煤岩对气体的吸附势函数,并假定吸附势函数是引起多孔介质变形和应力的一个因素,给出了考虑CO2吸附的煤岩热弹性模型的一般形式,分析了CO2吸附对煤岩热弹性模型的影响。结果表明,在弹性范围内,吸附势函数是通过改变热传导方程和热传导的热力学限制条件来间接影响介质的应力和变形的。而对应力一应变之间的关系表达式的形式没有影响。一旦给出自由能函数和吸附势函数的形式,就可以确定考虑气体吸附条件下介质的热弹性本构模型。  相似文献   

14.
It has been widely reported that coal permeability can change from reduction to enhancement due to gas adsorption even under the constant effective stress condition, which is apparently inconsistent with the classic theoretical solutions. This study addresses this inconsistency through explicit simulations of the dynamic interactions between coal matrix swelling/shrinking induced damage and fracture aperture alteration, and translations of these interactions to permeability evolution under the constant effective stress condition. We develop a coupled coal–gas interaction model that incorporates the material heterogeneity and damage evolution of coal, which allows us to couple the progressive development of damage zone with gas adsorption processes within the coal matrix. For the case of constant effective stress, coal permeability changes from reduction to enhancement while the damage zone within the coal matrix develops from the fracture wall to further inside the matrix. As the peak Langmuir strain is approached, the decrease of permeability halts and permeability increases with pressure. The transition of permeability reduction to permeability enhancement during gas adsorption, which may be closely related to the damage zone development in coal matrix, is controlled by coal heterogeneity, external boundary condition, and adsorption-induced swelling.  相似文献   

15.
煤体对气体进行吸附/解吸过程的本质是气体分子和煤基质表面分子或原子相互作用的过程,而发生相互作用的本质是能量变化,为了深入研究远红外作用下煤层气吸附/解吸过程及能量变化规律,利用自主研制装置进行远红外作用下不同含水率煤样对CO2的吸附/解吸实验,然后利用远红外热辐射原理所得的吸附/解吸能量公式对实验结果进行计算,得到不同含水率煤体吸附/解吸过程能量变化规律。结果表明:在远红外作用下,解吸率虽然随含水率增大呈下降趋势,但是下降幅度明显减小,远红外作用可以降低水分对煤层气吸附/解吸能力的影响;远红外作用下不同含水率煤体对气体吸附/解吸过程是一个物理变化,从能量角度可以解释该过程,其变化规律与等温吸附/解吸过程相吻合。研究结果丰富了煤层气增产技术理论。   相似文献   

16.
唐巨鹏  田虎楠  于宁  丁佳会 《岩土力学》2016,37(Z2):203-208
瓦斯压力是影响煤系页岩瓦斯吸附特性的关键因素。以阜新高瓦斯矿井清河门矿煤系页岩为研究对象,采用低场核磁共振(NMR)谱技术,通过向放有试样的夹持器中不断充入瓦斯,模拟煤系页岩瓦斯集聚赋存过程。以核磁共振T2谱幅值积分作为反映瓦斯吸附量定量化指标,从微细观角度定量研究瓦斯压力对吸附态和游离态瓦斯量影响规律。试验结果表明,(1)两个截止阈值确定了吸附态和游离态瓦斯T2谱曲线范围;(2)瓦斯压力对煤系页岩吸附态和游离态瓦斯增量均有显著影响。吸附态瓦斯增量变化受控于煤系页岩和瓦斯分子间作用力,而游离态瓦斯增量则主要与煤系页岩孔隙结构有关;(3)吸附态瓦斯量与瓦斯压力间关系符合朗格缪尔等温吸附方程,而游离态瓦斯与瓦斯压力呈3次函数关系;(4)以瓦斯T2谱均值变化幅度定量描述孔隙平均半径扩胀变形程度,随瓦斯压力增加,煤系页岩中~大孔隙结构均发生显著扩胀,平均半径增加1.47倍,而微孔隙结构尺寸未见明显变化。  相似文献   

17.
Laboratory observations have shown that coal permeability under the influence of gas adsorption can change instantaneously from reduction to enhancement. It is commonly believed that this instantaneous switching of permeability is due to the fact that the matrix swelling ultimately ceases at higher pressures and the influence of effective stresses take over. In this study, our previously-developed poroelastic model is used to uncover the true reason why coal permeability switches from reduction to enhancement. This goal is achieved through explicit simulations of the dynamic interactions between coal matrix swelling/shrinking and fracture aperture alteration, and translations of these interactions to perrmeability evolution under unconstrained swellings. Our results of this study have revealed the transition of coal matrix swelling from local swelling to macro-swelling as a novel mechanism for this switching. Our specific findings include: (1) at the initial stage of CO2 injection, matrix swelling is localized within the vicinity of the fracture compartment. As the injection continues, the swelling zone is extending further into the matrix and becomes macro-swelling. Matrix properties control the swelling transition from local swelling to macro swelling; (2) matrix swelling processes control the evolution of coal permeability. When the swelling is localized, coal permeability is controlled by the internal fracture boundary condition and behaves volumetrically; when the swelling becomes macro-swelling, coal permeability is controlled by the external boundary condition and behaves non-volumetrically; and (3) matrix properties control the switch from local swelling to macro swelling and the associated switch in permeability behavior from reduction to recovery. Based on these findings, a permeability switching model has been proposed to represent the evolution of coal permeability under variable stress conditions. This model is verified against our experimental data. It is found that the model predictions are consistent with typical laboratory and in-situ observations available in lietratures.  相似文献   

18.
为了研究煤体渗透率与压力梯度之间的关系,在考虑煤体吸附变形的基础上建立了煤体渗透率与瓦斯压力梯度的数学模型,并在恒温条件下进行同一压力梯度不同吸附平衡压力的条件下和同一吸附平衡压力不同压力梯度条件下的渗流实验。研究结果表明:在较低的孔隙压力条件下,煤体渗透率随着吸附平衡压力和压力梯度的增加而减小;建立的渗透率动态演化模型能够较好地描述煤层瓦斯抽采过程中瓦斯的流动规律。研究结果可以为我国煤矿瓦斯治理和抽采工作提供一定的理论支撑,具有一定的指导和实践意义。   相似文献   

19.
This paper presents the development of a discrete fracture model of fully coupled compressible fluid flow, adsorption and geomechanics to investigate the dynamic behaviour of fractures in coal. The model is applied in the study of geological carbon dioxide sequestration and differs from the dual porosity model developed in our previous work, with fractures now represented explicitly using lower-dimensional interface elements. The model consists of the fracture-matrix fluid transport model, the matrix deformation model and the stress-strain model for fracture deformation. A sequential implicit numerical method based on Galerkin finite element is employed to numerically solve the coupled governing equations, and verification is completed using published solutions as benchmarks. To explore the dynamic behaviour of fractures for understanding the process of carbon sequestration in coal, the model is used to investigate the effects of gas injection pressure and composition, adsorption and matrix permeability on the dynamic behaviour of fractures. The numerical results indicate that injecting nonadsorbing gas causes a monotonic increase in fracture aperture; however, the evolution of fracture aperture due to gas adsorption is complex due to the swelling-induced transition from local swelling to macro swelling. The change of fracture aperture is mainly controlled by the normal stress acting on the fracture surface. The fracture aperture initially increases for smaller matrix permeability and then declines after reaching a maximum value. When the local swelling becomes global, fracture aperture starts to rebound. However, when the matrix permeability is larger, the fracture aperture decreases before recovering to a higher value and remaining constant. Gas mixtures containing more carbon dioxide lead to larger closure of fracture aperture compared with those containing more nitrogen.  相似文献   

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