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首页> 外文期刊>Journal of Molecular Structure >Modeling of molecular and properties of anthracite base on structural accuracy identification methods
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Modeling of molecular and properties of anthracite base on structural accuracy identification methods

机译:结构精度鉴定方法对无烟煤基碱的建模与性质

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摘要

Molecular model construction is essential for the study of the energy conversion process, the combustion reaction mechanism and the clean utilization of coal. In this study, an anthracite molecular structure of GBW(E)110031 was constructed based on the structural accuracy identification methods, such as C-13 nuclear magnetic resonance spectroscopy (C-13 NMR), attenuated total reflection Fourier transform infrared spectroscopy (ATR-FTIR) and quantitative chemical analysis. The C-13 NMR spectrum was registered to analyze the carbon skeleton structure of the anthracite and twelve characteristic parameters of coal structures. The aromaticity, hydrogen aromaticity, and average aromatic nuclear size of the anthracite were calculated. These data were utilized to construct 17 basic structural units of aromatic carbon. The vibration modes of the carbon skeleton, several association forms of oxygen, and different types of functional group were confirmed based on the ATR-FTIR collected spectra. The content of functional groups and unsaturated aliphatic carbon alkenyl were determined by the calcium ion exchange method, the pyridine hydroxylamine hydrochloride oximation method and the bromine addition method. Based on these experimental data, a C(202)H(104)O(21)N(2)S(2)anthracite molecular structure model was constructed. In the molecular structure model, benzene and naphthalene structures accounted for 70% of the mass of aromatic compounds, while aliphatic structures existed in the form of side chains and rings. Carbonyl group (C=O) accounted for 85% of the oxygen atoms, while others existed in the form of carboxyl and hydroxyl groups. The nitrogen atoms presented in the structures of pyridine and pyrrole, and the sulfur atoms presented in the structures of thiophene. The theoretical analysis matched well with C-13 NMR spectra interpretation, which was verified the reliability and rationality of the molecular structure model and analytical method. (C) 2019 Published by Elsevier
机译:分子模型建设对于研究能量转换过程,燃烧反应机理和煤的清洁利用至关重要。在该研究中,基于结构精度识别方法(例如C-13核磁共振光谱(C-13 NMR))构建了GBW(E)110031的无烟煤分子结构,减弱了总反射傅里叶变换红外光谱(ATR- FTIR)和定量化学分析。登记C-13 NMR光谱以分析煤结构的无烟煤和十二个特征参数的碳骨架结构。计算芳烟石的芳香性,芳香性和平均芳族核尺寸。这些数据用于构建芳族碳的17个基本结构单元。基于ATR-FTIR收集的光谱,确认碳骨架,几种催化形式的氧气和不同类型的官能团的振动模式。通过钙离子交换法,吡啶羟胺盐酸氧化方法和溴添加方法测定官能团和不饱和脂族碳链烯基的含量。基于这些实验数据,构建了C(202)H(104)o(21)N(2)S(2)无烟煤分子结构模型。在分子结构模型中,苯和萘结构占芳族化合物质量的70%,而脂族结构以侧链和环的形式存在。羰基(C = O)占氧原子的85%,而其他物质以羧基和羟基的形式存在。吡啶和吡咯结构中呈现的氮原子,以及在噻吩结构中呈现的硫原子。与C-13 NMR光谱解释相匹配的理论分析,验证了分子结构模型的可靠性和合理性和分析方法。 (c)2019年由elestvier发布

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