热力耦合作用下CO2置换煤CH4特性研究

IF 0.9 4区 工程技术 Q4 CHEMISTRY, MULTIDISCIPLINARY
Haoyu Xu
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引用次数: 0

摘要

煤炭资源进入深部开采后,煤体处于“高地应力”、“高渗透压”、“高温”的复杂地质条件下。在这种地质条件下,煤体渗透率的演化规律是由多相、多场耦合共存决定的。此外,煤体的渗透性直接影响到煤矿开采的安全。对炼焦煤样品进行了热力耦合试验。采用扫描电镜和高压吸附仪对煤表面孔隙结构和吸附能力进行表征。对比分析了热力耦合处理前后煤的孔隙结构和驱气效率的变化。结果表明,在热力学耦合作用下,煤对CH4的吸附随压力的增大而增大。然而,随着温度的升高,煤对CH4的吸附呈现相反的趋势。随着注入压力的增大,CH4的替代率呈线性降低趋势。同样,随着温度的升高,CH4替代率也减小。热力耦合后,煤样孔隙结构发育,孔隙度增大。研究成果可为多场耦合瓦斯运移及煤层气治理研究提供理论基础和技术指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Study on CH4 Characteristics of CO2 Displacement Coal under Thermomechanical Coupling

Study on CH4 Characteristics of CO2 Displacement Coal under Thermomechanical Coupling

Study on CH4 Characteristics of CO2 Displacement Coal under Thermomechanical Coupling

When coal resources enter deep mining, the coal body is exposed to a complex geological condition characterized by “high ground stress”, “high osmotic pressure” and “high temperature”. Under such geological conditions, the permeability evolution law of the coal body is determined by the coexistence of multi-phase and multi-field coupling. Moreover, the permeability of the coal body directly impacts the safety of coal mining operations. Thermodynamic coupling tests were conducted on coking coal samples. The scanning electron microscope and high-pressure adsorption instrument were employed to characterize the pore structure and adsorption capacity on the coal surface. Subsequently, the changes in the coal pore structure and gas displacement efficiency before and after the thermodynamic coupling treatment were compared and analyzed. The results demonstrated that, under thermodynamic coupling, the adsorption of CH4 in the coal rises with the increase in pressure. However, as the temperature increases, the adsorption of CH4 in the coal exhibits an opposite tendency. With the growth of injection pressure, the replacement ratio of CH4 decreases linearly. Likewise, with the elevation of temperature, the CH4 replacement ratio also diminishes. After the thermodynamic coupling, the pore structure of the coal sample is well-developed and the porosity is enhanced. The research findings can offer a theoretical foundation and technical guidance for the study of multi-field coupled gas migration and coal seam gas treatment.

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来源期刊
Solid Fuel Chemistry
Solid Fuel Chemistry CHEMISTRY, MULTIDISCIPLINARY-ENERGY & FUELS
CiteScore
1.10
自引率
28.60%
发文量
52
审稿时长
6-12 weeks
期刊介绍: The journal publishes theoretical and applied articles on the chemistry and physics of solid fuels and carbonaceous materials. It addresses the composition, structure, and properties of solid fuels. The aim of the published articles is to demonstrate how novel discoveries, developments, and theories may be used in improved analysis and design of new types of fuels, chemicals, and by-products. The journal is particularly concerned with technological aspects of various chemical conversion processes and includes papers related to geochemistry, petrology and systematization of fossil fuels, their beneficiation and preparation for processing, the processes themselves, and the ultimate recovery of the liquid or gaseous end products.
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