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Study on the pyrolysis kinetics of low-medium rank coals with distributed activation energy model

机译:用分布活化能模型研究中低阶煤的热解动力学

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A deep understanding of coal pyrolysis behaviors is essential for the clean and efficient coal utilization. Detailed structural characterization and kinetic analysis could provide valuable information about coal pyrolysis. This work deals with structural analysis and pyrolysis kinetics of four low-medium rank coals with the distributed activation energy model (DAEM). The carbon structures, pyrolysis characteristic and kinetic parameters were correlated to gain some updated insights into coal pyrolysis. The results show that aliphatic carbons gradually convert into aromatic ones, and the aromatic clusters grow in both size and weight with the rise of coal rank. The side-chains of aromatic clusters are shortened and eliminated thus aromaticity is increased. Characteristic temperatures of pyrolysis are closely related to coal properties and carbon types. Both initial and peak temperatures increase with FCar and Cd-af while decrease with VMar and H/C. Meanwhile, the initial temperature is related to the aliphatic carbon (f(al)) and aliphatic carbon bonded oxygen (f(al)(o)) due to their low bonding energies, while the peak temperature is linked to the aromatic carbon (f(a)) and aromatic bridgehead carbon (f(a)(B)) because of their higher bonding energy. DAEM model is reliable for analyzing pyrolysis kinetics of bituminous coals. The range of activation energy gradually narrows down with the increase of coal rank, corresponding to the concentrating distribution of different carbon types. Moreover, DAEM could accurately predict the pyrolysis behavior of bituminous coals at very high heating rates, but the effectiveness of DAEM in modeling and predicting pyrolysis of lignite is less satisfying.
机译:对煤炭热解行为的深刻理解对于清洁高效地利用煤炭至关重要。详细的结构表征和动力学分析可以提供有关煤热解的有价值的信息。这项工作利用分布活化能模型(DAEM)来处理四种中低阶煤的结构分析和热解动力学。碳结构,热解特性和动力学参数相互关联,以获得对煤热解的一些最新见解。结果表明,随着煤阶的增加,脂肪族碳逐渐转化为芳族碳,且芳族簇的大小和重量均增加。芳香族簇的侧链被缩短和消除,从而增加了芳香性。热解的特征温度与煤的性质和碳类型密切相关。初始温度和峰值温度随FCar和Cd-af升高,而随VMar和H / C降低。同时,由于它们的键能低,初始温度与脂族碳(f(al))和脂族碳键合的氧(f(al)(o))有关,而峰值温度与芳族碳(f (a))和芳族桥头碳(f(a)(B)),因为它们具有更高的键合能。 DAEM模型对于分析烟煤的热解动力学是可靠的。活化能的范围随着煤级的增加而逐渐缩小,对应于不同碳类型的集中分布。此外,DAEM可以在非常高的加热速率下准确预测烟煤的热解行为,但DAEM在建模和预测褐煤热解方面的有效性却不令人满意。

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