Experimental Study of Long-Term Gas Adsorption Effect on Pore Structures and Mechanical Strength Characteristics of Coal

W. Geng, Gun Huang, Shengli Guo, Changbao Jiang, Ziwen Dong, Wensong Wang
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Abstract

Gas hazard is still one of the most severe disasters in coal mining, and its occurrence is inseparable from the interaction of coal and gas. In order to study the influence of adsorbable gas on coal pore structures and mechanical strength, coal specimens were placed in a low-pressure environment of CH4 or CO2 for 30 days to ensure that the specimens were saturated and fully interacted with the gas. Low-pressure nitrogen adsorption, scanning electron microscope, X-ray diffraction, and uniaxial compressive strength tests were employed to study coal's microstructure change and strength characteristics. The results showed that after CH4 or CO2 treatment, the proportion of macropores increases by 38.87% and 22.89%, and that of mesopores decrease by 6.34% and 3.73%, respectively, which indicates the evolution of mesopores to macropores and the formation of new pores. The microcrystalline structure parameters change obviously after long-term gas adsorption treatment. The values of d002 and d100 increase, while Lc , La , and Mc's values both decrease, resulting in a loose coal structure. Besides, a conceptual model is proposed to explain the evolution mechanism of pore structures under the effect of long-term gas adsorption.
气体长期吸附对煤孔隙结构及力学强度特性影响的实验研究
瓦斯灾害仍然是煤矿开采中最严重的灾害之一,其发生与煤与瓦斯的相互作用密不可分。为了研究可吸附气体对煤孔隙结构和力学强度的影响,将煤样置于低压CH4或CO2环境中30天,以确保煤样饱和并与气体充分相互作用。采用低压氮气吸附、扫描电镜、x射线衍射和单轴抗压强度试验研究了煤的微观结构变化和强度特征。结果表明:CH4和CO2处理后,大孔的比例分别增加了38.87%和22.89%,中孔的比例分别减少了6.34%和3.73%,表明中孔向大孔演化并形成了新的孔隙;经长期气体吸附处理后,微晶结构参数发生明显变化。d002、d100值增大,Lc、La、Mc值减小,形成松散煤结构。此外,提出了一个概念模型来解释长期气体吸附作用下孔隙结构的演化机制。
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