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难注水煤层液态CO2加注多场耦合演化规律研究

Research on multi-field coupling evolution law of liquid CO2 filling in difficult water injection seams

  • 摘要: 针对难注水煤层低孔隙率、低渗透性,传统注水减尘技术难以有效润湿煤体问题,提出通过液态CO2加注煤层进行结构改造进而提升煤层注水效果的新思路。为厘清难注水煤层液态CO2加注过程多场耦合演化规律,以平煤集团五矿己15煤层为研究对象,联合Comsol有限元软件与Matlab数据处理软件,建立了难注水煤层液态CO2加注流-热-固多场耦合作用模型;针对复杂的煤体孔-裂隙结构,引入非均质分布参数,通过Comsol with Matlab接口将煤层划分为10 000个区域,并调用Weibull分布函数,对煤层所有区域的材料性质分别赋值,实现煤体材料的非均质性表达。通过对加注压力、加注时间等参数控制变量模拟,分析难注水煤层液态CO2加注过程多场耦合演化情况。研究结果表明:液态CO2加注过程中煤层的渗流通道扩展速率、冷却区域延展范围、拉损伤及压损伤比例与液态CO2加注时间及加注压力呈正相关,且相比加注时间,其渗流、冷却、损伤区域的延扩速率受加注压力的影响更为显著;与加注压力为10 MPa相比,在20 MPa时明显增加了外层区域较低流速的分支流道数量,具有更强打开煤层渗流通道的能力;在加注压力由0 MPa加载至30 MPa过程中,煤层拉损伤和压损伤比例最终分别达到47.86%和4.23%,煤层损伤以拉损伤为主,这与煤体抗拉能力远低于抗压能力的本构关系相一致。研究工作可为研发煤层液态CO2致裂增润防灾技术提供理论基础。

     

    Abstract: In view of the low porosity and permeability of the coal seams that are difficult to inject water, and the difficulty of effectively wetting the coal body with the traditional water injection dust reduction technology, a new idea of improving the water injection effect of the coal seams by injecting liquid CO2 into the coal seams is proposed. In order to clarify the multi-field coupling evolution law of the liquid CO2 filling process in the coal seam with difficulty in water injection, this paper selects the Ji-15 coal seam of Minmetals in Pingmei Group as the research object. A multi-field coupling cooperation model of the liquid CO2 filling in the coal seam with difficulty in water injection was established by combining the Comsol finite element software and the Matlab data processing software. In view of the complex hole-fracture structure of the coal body, the heterogeneous distribution parameters are introduced, and the coal seam is divided into 10 000 areas through the Comsol with Matlab interface, and the Weibull distribution function is called to assign values to the material properties of all areas of the coal seam, so as to achieve the heterogeneous representation of the coal body material. Through the simulation of filling pressure, filling time and other parameter control variables, the multi-field coupling evolution of liquid CO2 filling process in coal seams with difficulty in water injection is analyzed. The results show that the expansion rate of the seepage channel, the extension range of the cooling zone, the ratio of tensile damage and compressive damage are positively correlated with the filling time and pressure of liquid CO2, and the evolution rate of seepage, cooling and damage area is more significantly affected by the filling pressure than the filling time; Compared with the filling pressure of 10 MPa, at 20 MPa, the number of branch flow channels with lower flow velocity in the outer region is significantly increased, and the ability to open the coal seam seepage channel is stronger; In the process of loading the filling pressure from 0 MPa to 30 MPa, the proportion of tensile damage and compressive damage of the coal seam finally reached 47.86% and 4.23%, respectively. The main damage of the coal seam is tensile damage, which is consistent with the constitutive relationship that the tensile capacity of the coal body is far lower than the compressive capacity. The research work can provide a theoretical basis for the research and development of coal seam liquid CO2 fracturing, moisture enhancement and disaster prevention technology.

     

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