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Numerical study on enhancing coalbed methane recovery by injecting N2/CO2 mixtures and its geological significance

机译:注入N2 / CO2混合物提高煤层气回收的数值研究及其地质意义

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As an effective carbon utilization technology, the injection of N2/CO2 mixtures into coal seams has significant potential for improving coalbed methane recovery. Considering the technical barrier that injection of pure CO2 decreases the well injectivity index and pure N2 injection leads to the rapid methane recovery, a method of injecting N2‐enriched gas mixtures with a constant component is proposed. In this study, a thermo‐hydro‐mechanical (THM) coupling numerical model for enhanced coalbed methane (CBM) recovery by injecting N2/CO2 mixtures is established. This model includes complex interactions of coal deformation, competitive adsorption, ternary gas seepage, and heat transfer. The THM coupling model is first validated, and then applied to investigate the evolution of mixed gas concentrations, reservoir permeability, reservoir temperature, CH4 production, and N2/CO2 storage during N2/CO2 enhanced CBM recovery. The results show that the displacement radius and concentration of the mixed gas in the coal seam increased with gas injection pressure increase. The concentration of CH4 gradually decreased with time, and the early decline is faster than the later stage. The sweep of the N2 flow accelerates CH4 desorption and migration, promoting a reduction in reservoir temperature near the production well. Reservoir permeability evolution results from the combined effects of ternary gases (CH4, CO2, N2) competitive adsorption, gas pressure, and geostress on the coal seam within the THM fields. At the methane natural depletion stage (within 250?days), the permeability of coal reservoir first decreases and then increases. With the arrival of the N2/CO2 mixture, the permeability decreases dramatically. From the perspective of cumulative CH4 production, the optimal composition is dominated by the synergistic effect of maximizing breakthrough time and minimizing coal matrix swelling. For 30% CO2‐70% N2, the CH4 recovery ratio reached 71.76%, representing an increase of 16.67% compared to natural depletion.
机译:作为一种有效的碳利用技术,将N 2 / CO2混合物注入煤层具有改善煤层溶液的显着潜力。考虑到纯二氧化碳注入的技术屏障降低了井的注射指数和纯N 2注射导致快速甲烷回收,提出了一种用恒定组分注入N 2富含N 2的气体混合物的方法。在本研究中,建立了通过注入N 2 / CO 2混合物来增强煤层甲烷(CBM)回收的热 - 水力 - 机械(THM)偶联数值。该模型包括复杂的煤变形,竞争吸附,三元气体渗流和传热的相互作用。首先验证了THM耦合模型,然后应用于在N 2 / CO 2增强CBM恢复期间研究了混合气体浓度,储层渗透率,储层温度,CH4生产和N2 / CO2储存的进化。结果表明,煤层中混合气体的位移半径和浓度随气体喷射压力增加而增加。 CH4的浓度随时间逐渐降低,早期下降比后期阶段更快。 N2流量的扫描加速了CH4解吸和迁移,促进了生产井附近的储层温度降低。储层渗透性进化来自三元气体(CH4,CO2,N2)竞争吸附,气体压力和GeoStress在THM领域内的煤层的组合效应。在甲烷天然耗尽阶段(在250℃内),煤储层的渗透率首先降低,然后增加。随着N2 / CO2混合物的到来,渗透率显着降低。从累积CH4生产的角度来看,最佳组合物主要是通过最大化突破时间和最小化煤基质肿胀的协同效应。对于30%CO2-70%N2,CH4回收率达到71.76%,与天然耗竭相比,增加了16.67%。

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