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Numerical study on injection of flue gas as a heat carrier into coal reservoir to enhance CBM recovery

机译:烟气作为煤储层中烟气注入烟气的数值研究,提升CBM恢复

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A hydraulic-mechanical-thermal coupled numerical model for enhanced CBM recovery by injecting the flue gas (flue gas ECBM) is established, which fully couples the gas-water two-phase flow, competitive adsorption and temperature change as well as coal deformation. The model is first validated, then used to analyze the effects of different injectant components and temperature on CH4 production, CO2 storage and the evolution of permeability. The mechanism that enhanced CBM recovery and CO2 sequestration by injecting flue gas is discussed from the perspectives of competitive adsorption and selective diffusion in the molecule scale as well as the permeability evolution. CO2 can be competitively adsorbed on the surface of coal pores to desorb adsorbed CH4, while N-2 desorbs adsorbed CH4 by effectively reducing the CH4 partial pressure in the pores, enhanced CBM recovery by injection of flue gas is the result of the combination of these two effects. During the flue gas ECBM process, the permeability first decreases under the coaction of coal matrix expansion and effective stress increase; subsequently, the desorption of adsorbed CH4 induced by the N-2 component is dominant, which leads to a significant increase in permeability. Appropriately increasing the injection temperature of flue gas is conducive to the desorption of adsorbed CH4, and thus beneficial to the permeability and CO2 sequestration. Before the arrival of CO2, some adsorbed CH4 can be desorbed first under the action of N-2, which is not only beneficial to permeability, but also provides more adsorption sites for CO2 adsorption. However, the strategies for managing N-2 breakthroughs are needed to achieve an optimal balance between CH4 production, CH4 purity and CO2 sequestration over the entire project period.
机译:建立了通过注入烟道气(烟道气ECBM)来增强CBM恢复的液压 - 机械热耦合数值模型,这完全耦合了气水两相流,竞争性吸附和温度变化以及煤变形。该模型首先经过验证,然后用于分析不同注射组分和温度对CH4生产,CO2储存和渗透性的演变的影响。通过在分子量表中的竞争性吸附和选择性扩散的视角以及渗透性进化的视角下讨论了通过注入烟道气来增强CBM回收和CO2螯合的机制。 CO2可以竞争地吸附在煤孔的表面上以解吸吸附的CH4,而N-2通过有效地降低孔中的CH 4分压而吸附的CH4,通过注射烟道气增强CBM恢复是这些组合的结果两种效果。在烟气欧洲欧洲燃气过程中,在煤基质膨胀和有效应力增加的同时,渗透率首先降低;随后,由N-2组分诱导的吸附CH 4的解吸是显性的,这导致渗透性的显着增加。适当地提高烟道气的喷射温度有利于吸附的CH 4的解吸,从而有益于渗透性和CO2螯合。在CO 2到达之前,在N-2的作用下,一些吸附的CH4可以首先解吸,这不仅有利于渗透性,而且还提供更多的CO 2吸附的吸附位点。但是,需要管理N-2突破的策略,以在整个项目期间实现CH4生产,CH4纯度和CO2封存之间的最佳平衡。

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