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深部煤层微生物气化开采与CO2协同封存理论与技术构想

Research framework of theory and technology for microbial gasification mining and CO2 cooperative sequestration in deep coal seams

  • 摘要: 深部煤炭资源是保障我国能源安全的重要组成部分。在“碳达峰、碳中和”目标的指导下,绿色清洁开发深部煤炭资源是未来煤炭开采行业的常态化选择。随着开采活动向深部延伸,传统采煤工艺在面对深部地层高应力、高地温等极端工程环境时存在局限性。流态化开采作为深地煤炭资源颠覆性理论,是突破固体矿产资源极限开采深度的潜在技术。面向我国深部煤层开发现状与行业需求,基于“双碳”目标的背景及煤炭深部原位流态化开采理论,提出了深部煤层微生物气化开采与CO2协同封存的技术构想,系统阐述了理论框架与主要工艺流程。深部煤层微生物气化开采与CO2协同封存亟需解决的核心科学问题是:揭示深部煤层增透及裂隙演化规律,培养、驯化与筛选煤炭原位降解菌群,评估深部煤层CO2封存机制。亟需攻克的关键技术包括:深部煤层智能压裂导控技术、煤炭原位微生物气化监控技术、深地多相流混输地下管路保护技术、CO2封存安全风险评价及地质响应监测技术。针对深部煤层微生物气化开采与CO2协同封存理论不同阶段的施工需求,合理规划设计深部煤层开发流程。统筹开发前矿区地表与地下空间的设备布置及作业内容规划,协调开发中各技术体系的施工环节,监测开发后地质响应特征,形成可推广的开发模式与技术标准。通过构建微生物气化与CO2协同封存的创新模式,实现深部煤炭资源安全高效开发与碳封存双重目标,推动传统采煤业向绿色低碳化开发路径转型,为我国深部煤炭资源开发与“双碳”目标推进提供理论与技术支撑。

     

    Abstract: Deep coal resources constitute a vital pillar for ensuring China's energy security. Guided by the strategic goals of carbon peaking and carbon neutrality, the green and clean exploitation of deep coal resources will be a common practice for the coal mining industry in the future. As mining activities extend into deep strata, conventional coal mining craft exhibit pronounced limitations when confronting extreme engineering environments characterized by high in-situ stress and high ground temperatures within deep geological formations. Fluidized mining, as a disruptive theory for deep underground coal resource exploitation, constitutes a potential technology to overcome the critical depth constraints of solid mineral resource extraction. Aiming at the development status and industrial demands of deep coal seams in China, guided by the carbon peaking and carbon neutrality goals and the in-situ fluidized mining theory of deep underground coal resources, this study proposes a technology theory for microbial gasification mining and CO2 cooperative sequestration in deep coal seams, and systematically elaborates the research framework and the key process. The core scientific issues that need to be solved urgently include: elucidating the mechanisms underlying permeability enhancement and fracture evolution in deep coal seams, culturing, domesticating, and screening of in-situ coal-degrading microbial system, and evaluating the mechanism of CO2 sequestration in deep coal seams. The key technologies that need to be overcome urgently include intelligent fracture guide control systems for deep coal seams, in-situ microbial gasification monitoring platforms, multiphase-flow mixed transportation pipelines preservation in deep earth, and CO2 sequestration safety risk evaluation and geological responses monitoring. Aiming at construction demand of different stages for microbial gasification mining and CO2 cooperative sequestration in deep coal seams, the development process of deep coal seams should be rationally planned and designed. Integrating equipment layout and operation planning for surface and underground spaces in mining areas during the pre-development, coordinating construction processes across technical systems during development, monitoring post-development geological response characteristics, replicable development models and technical standards will be established ultimately. By constructing an innovation model of microbial gasification mining and CO2 cooperative sequestration, the dual objectives of safe and highly-efficient exploitation of deep coal resources and carbon storage will be achieved. This study will realize the transformation of traditional coal mining industry towards a green and low-carbon development pathway, providing theoretical and technological support for the synergistic advancement of China's deep coal resources exploitation and carbon peaking and carbon neutrality goals.

     

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