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    基于不同密度组分的不黏煤大分子结构及聚集态结构模型构建

    Construction of macromolecular structure and aggregation structure model of non-caking coal based on different density components

    • 摘要: 为深入解析南露天煤的分子结构特征,促进煤炭资源的高效开发与清洁利用,采用工业分析、元素分析、X射线光电子能谱、固体核磁等表征手段,确定了南露天煤中的结构参数,再结合分子动力学计算,构建了南露天煤的低密度组(NLTL)和高密度组(NLTH)的大分子结构模型,并对构建的大分子结构模型进行优化,得到NLTL和NLTH大分子最低能量结构及能量参数,并按照原煤真相对密度以及原煤中的低密度组与高密度组的比例构建了南露天原煤(NLTC)的聚集态结构。结果表明:南露天煤具有氧含量较高和硫含量较低的特点,其中氧元素主要以羧基、酚羟和醚等形式存在,比例约为1∶1∶1,NLTL中氮元素主要以吡咯形式存,NLTH中氮元素主要以吡啶形式存在。NLTL和NLTH结构中的芳香碳为碳骨架中的主体,芳香碳占比分别为61.32%、57.06%,脂肪碳占比分别为25.15%、28.99%,XBP分别为0.140和0.221,NLTL的芳香结构主体是苯和萘,NLTH芳香结构主体是萘,芳环碳原子总数分别为81和78个,NLTL和NLTH大分子结构的分子式分别为C132H109N3O28和C136H117N3O25,分子量分别为2185.322193.43,模型优化后,NLTL和NLTH的总势能分别为2048.05 kJ/mol和1612.60 kJ/mol,NLTH的总势能更低,其大分子结构更加稳定。在模拟构建聚集态结构的过程中,分别以26个NLTL和25个NLTH的大分子结构模拟真实密度下的南露天原煤的聚集态结构,通过几何优化和退火动力学模拟得到能量最低且稳定的聚集态结构,其优化后总势能下降了7470.57 kJ/mol,其中范德华能降低最多,其次是扭转能、角能、静电能和反转能,最终得到密度为1.45 g/cm3的NLTC聚集态结构,这与原煤密度相符。

       

      Abstract: To deeply analyze the molecular structural characteristics of Nanlutian coal and promote the efficient development and clean utilization of coal resources, this study employed characterization methods including industrial analysis, elemental analysis, X-ray photoelectron spectroscopy, solid-state nuclear magnetic resonance, etc. The structural parameters of Nanlutian coal were determined, and molecular dynamic calculations were combined to construct the molecular structure models of low-density group enrichment samples (NLTL) and high-density group enrichment samples (NLTH). The constructed molecular structure models were optimized, yielding the lowest energy structures and energy parameters for NLTL and NLTH molecules. Based on the true density of raw coal and the proportion of low-density and high-density groups in the raw coal, an aggregated structure of Nanlutian raw coal (NLTC) was constructed. The results indicate that Nanlutian coal has a high oxygen content and a low sulfur content. Oxygen elements mainly exist in the forms of carboxyl, phenol hydroxyl, and ether, with a ratio of approximately 1∶1∶1. Nitrogen elements in NLTL mainly exist in the form of pyrrole, while in NLTH, they mainly exist in the form of pyridine. Aromatic carbons in NLTL and NLTH structures constitute the main body of the carbon framework, accounting for 61.32% and 57.06%, respectively. The proportions of aliphatic carbons are 25.15% and 28.99%, respectively, with XBP values of 0.140 and 0.221. The main aromatic structures in NLTL are benzene and naphthalene, while in NLTH, the main aromatic structure should be naphthalene. The total number of aromatic carbon atoms is 81 and 78, respectively, with molecular formulas of C132H109N3O28 and C136H117N3O25 and molecular weights of 2185.32 and 2193.43. After model optimization, the total potential energies of NLTL and NLTH are 2048.05 kJ/mol and 1612.60 kJ/mol, respectively, with NLTH having lower total potential energy, indicating a more stable molecular structure. During the process of simulating the aggregated structure, the lowest energy and stable aggregated structure of NLTC with a density of 1.45 g/cm3 was obtained by geometric optimization and annealing dynamic simulation, with a decrease in total potential energy of 7470.57 kJ/mol, primarily due to the reduction in van der Waals energy, followed by torsional energy, angle energy, electrostatic energy, and inversion energy, consistent with the density of the original coal.

       

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