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Modelling and optimization of enhanced coalbed methane recovery using CO_2/N_2 mixtures

机译:使用CO_2 / N_2混合物提高煤层气采收率的建模和优化

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摘要

Injection of gas mixtures (CO2, N-2) into coal seams is an efficient method to both reduce CO2 emissions and increase the recovery of coalbed methane. This process involves a series of complex interactions between ternary gases (CH4, CO2, and N-2) co-adsorption on coals, mass transport of two-phase flow, together with heat transfer and coal deformation. We develop an improved thermo-hydro-mechanical (THM) model coupling these responses for gas mixture enhanced CBM recovery (GM-ECBM). The model is first validated, and then applied to simulate and explore the evolution of key parameters during GM-ECBM recovery. Schedules of constant- and variable-composition injection are optimized to maximize CH4 recovery and CO2 sequestration. Result shows that the injected gas mixture displaces CH4 through competitive sorption and accelerates the transport of CH4 within the coal seam. The consistency between the modelling and field results verifies the feasibility and fidelity of the THM model for effective simulation key processes in GM-ECBM. Permeability evolution is strongly influenced by the combined effects of CH4 desorption induced matrix shrinkage, CO2/N-2 adsorption induced matrix swelling, thermal strains, and compaction induced by changes in effective stress. During ECBM, reservoir permeability first increases due to pressure depletion and CH4 desorption, then dramatically decreases due to matrix swelling activated by the arrival of the CO2/N-2 mixture. CH4 pressure decreases rapidly at early time due to displacement by the injected gas mixture, and then deceases slowly in the later stage. The sweep of N-2 accelerates CH4 desorption and subsequent transport, and hence promotes a decrease in reservoir temperatures distant from the injection well even prior to the arrival of CO2. CH4 production rate during GM-ECBM exhibits a decline-increase-decline trend and usually has an elevated but delayed CH4 production peak compared to primary recovery. A higher CO2 Langmuir strain constant reduces the critical CO2 composition in the injected mixture when reaching the threshold of well shut down. An improved balance between early threshold (N-2) and large matrix swelling (CO2) can be achieved by injection beginning with low CO2 composition and following with a sequential increase of CO2 composition. In studied cases, the gas recovery ratio of the optimal variablecomposition case reaches 68.4% compared to of 59.4% pure CO2 and 64.2% of optimal constant-composition cases, indicating a higher efficiency of variable-composition injection.
机译:将气体混合物(CO2,N-2)注入煤层是减少CO2排放并增加煤层气回收率的有效方法。此过程涉及煤上三元气体(CH4,CO2和N-2)的共吸附,两相流的传质,传热和煤变形之间的一系列复杂相互作用。我们开发了一种改进的热-水力-机械(THM)模型,结合了这些响应,从而提高了混合气的煤层气采收率(GM-ECBM)。该模型首先经过验证,然后应用于模拟和探索GM-ECBM恢复过程中关键参数的演变。优化了恒定成分和可变成分注入的时间表,以最大程度地回收CH4和隔离CO2。结果表明,注入的混合气体通过竞争吸附作用置换了CH4,并加速了CH4在煤层中的传输。建模与现场结果之间的一致性验证了THM模型在GM-ECBM中进行有效仿真关键过程的可行性和保真度。渗透率的演变受CH4解吸引起的基体收缩,CO2 / N-2吸附引起的基体膨胀,热应变和有效应力变化引起的压实的综合影响。在ECBM期间,储层渗透率首先由于压力耗尽和CH4解吸而增加,然后由于由于CO2 / N-2混合物的到来而引起的基质膨胀而急剧下降。由于注入气体混合物的置换,CH4压力在早期迅速下降,然后在后期缓慢下降。 N-2的吹扫加速了CH4的解吸和随后的运输,因此甚至在CO2到达之前,就促进了远离注入井的储层温度的降低。与主要恢复相比,GM-ECBM期间的CH4生产率呈现出下降-上升-下降趋势,并且通常具有升高但延迟的CH4产量高峰。当达到井关闭阈值时,较高的CO2 Langmuir应变常数会降低注入混合物中的临界CO2组成。通过从低CO2成分开始注入,然后依次增加CO2成分,可以实现早期阈值(N-2)与大基质溶胀(CO2)之间的平衡改善。在研究案例中,最佳可变组成案例的气体回收率达到68.4%,而纯CO2和最佳恒定组成案例的气体回收率分别为59.4%和64.2%,表明可变组成注入的效率更高。

著录项

  • 来源
    《Fuel》 |2019年第1期|1114-1129|共16页
  • 作者单位

    Liaoning Tech Univ Coll Min Fuxing 123000 Peoples R China|Henan Polytech Univ State Key Lab Cultivat Base Gas Geol & Gas Contro Jiaozuo 454003 Henan Peoples R China|Penn State Univ Energy & Mineral Engn G3 Ctr University Pk PA 16802 USA|Penn State Univ Energy & Mineral Engn EMS Energy Inst University Pk PA 16802 USA;

    Penn State Univ Energy & Mineral Engn G3 Ctr University Pk PA 16802 USA|Penn State Univ Energy & Mineral Engn EMS Energy Inst University Pk PA 16802 USA;

    Liaoning Tech Univ Coll Min Fuxing 123000 Peoples R China;

    Penn State Univ Energy & Mineral Engn G3 Ctr University Pk PA 16802 USA|Penn State Univ Energy & Mineral Engn EMS Energy Inst University Pk PA 16802 USA|Univ Queensland Sch Mech & Min Engn St Lucia Qld 4072 Australia;

    Liaoning Tech Univ Coll Min Fuxing 123000 Peoples R China|Shanxi Luan Min Grp Ltd Liabil Co Ctr Technol Changzhi 046299 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Enhanced CBM recovery; Injection of gas mixture; Thermo-hydro-mechanical coupling model (THM); Mass and heat transfer; Variable-composition; CO2 sequestration;

    机译:增强了煤层气采收率;注入混合气体;热-水-机械耦合模型(THM);质量和热传递;可变成分二氧化碳封存;

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