高级检索

“双碳”目标下煤矿地下空间响应式增强型储热充填系统理论与技术探索

Theoretical and technical concept of cemented backfill material for flexible enhanced thermal energy storage in coal underground space

  • 摘要: 煤矿开采地下空间储能是实现矿山转型升级的重要手段,增强型储热充填技术不仅提高煤基固废资源利用率,更能保障新能源的高效消纳与利用。基于当前煤炭开采技术分析了充填开采研究现状,结合功能性充填理念提出“煤炭地下空间响应式增强型储热充填系统”的科学内涵。响应式增强型储热充填系统核心是确保“四性”条件:地质条件适宜性、储–采热技术可行性、传热传质高效性以及运行周期安全稳定性,提升热能储–采效率、强化储热系统封闭性、确保围岩稳定性是实现储热充填系统高效运转的关键。在此基础上综合考虑热源温度、传输距离、热能载体循环速度等因素对热能提取效率的影响,研发储热充填体热能高效提取工艺,形成热能高效热交换设计方法。同时,基于储热系统运行充填体热力学特性动态演化规律,揭示充填体时效变形损伤微观机理,构建稳定性预测及评价体系。响应式增强型储热充填系统技术路径围绕采前地质条件→采中充填体动态参数响应→埋管–充填体–围岩耦合作用→矿山地下空间–可变能源协调开发战略主线,融合风光互补构想,开展储热层位勘探与选址,实现储热充填系统超前规划,研制高效储热充填材料,指导储热系统运行参数规划设计,进而保障增强型储热充填系统安全稳定高效运行。最后,以地质科学为基础,结合采矿学相关理论,构建以煤炭开采、地质工程技术、生态环境三位一体的响应式增强型储热充填体系统地质保障理论与工程技术体系。响应式增强型储热充填技术实现矿山与可变能源的有机结合,突出灵活响应式充填储热,丰富了充填开采内涵,能够为我国发展赋煤区新能源,促进矿山转型利用提供理论参考与实践范例。

     

    Abstract: Thermal energy storage in underground coal mining is a crucial approach to achieving the transformation and upgrading of mines. The cemented backfill material for enhanced thermal energy storage not only improves the utilization rate of coal-based solid waste resources, but also ensures the efficient consumption and utilization of renewable energy. The research status of backfill mining is analyzed based on the current coal mining technology and the scientific concept of "cemented backfill material for flexible enhanced thermal energy storage (CBM–FETES)" is proposed by integrating the idea of functional filling. The core of CBM–FETES is to ensure the four essential conditions: the suitability of geological conditions, the feasibility of thermal storage and extraction technologies, high efficiency in heat and mass transfer, and the safety and stability of the operational cycle. The key to achieving the efficient operation of CBM–FETES is to improve the thermal energy storage and extraction efficiency, enhance the sealing of the thermal storage system, and ensure the stability of the surrounding rock. The impact of factors such as heat source temperature, heat transfer distance and the circulation velocity on the heat extraction efficiency is analyzed, and thus the efficient heat extraction technique for CBM–FETES can be developed. Moreover, the efficient heat exchange design method for thermal energy is established based on the above analysis. During the process of thermal energy storage and extraction, micro-mechanisms of aging deformation and damage in backfilling body is revealed and the stability prediction and evaluation system is constructed based on the analysis of the thermodynamic characteristics of backfilling body. The technical path of CBM–FETES revolves around the following strategic mainline: pre-mining geological conditions → dynamic parameters response of backfilling body during mining → coupling effect of buried pipes, backfilling body and surrounding rock → coordinated development of mining underground space and variable energy. The planning and design of operational parameters for the thermal energy storage system is conducted by integrating the wind-solar hybrid concept, exploration and site selection for thermal storage layers, advanced planning of thermal storage filling systems and preparation of high-efficiency thermal storage materials. Based on mining theory, geological support theory and engineering technology system of CBM–FETES, which integrates coal mining, geological engineering, and ecological environment technologies, is established. In general, CBM–FETES realizes the full integration of mines and variable energy sources and enriches the connotation of filling mining. In addition, CBM–FETES proposed in this paper can provide theoretical references and practical examples for the development of renewable energy in coal mining areas and promote the transformation and utilization of mines in China.

     

/

返回文章
返回