4.7 Article

Theoretical understanding of coal char oxidation and gasification using reactive molecular dynamics simulation

期刊

FUEL
卷 260, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.fuel.2019.116300

关键词

Coal char; Oxidation and gasification; Reactive molecular dynamics simulation; Combustion kinetics

资金

  1. National Natural Science Foundation of China [51376045]
  2. Postgraduate Research & Practice Innovation Program of Jiangsu Province [KYCX18_0084]
  3. American Chemical Society (ACS) Petroleum Research Fund (PRF) under the Doctoral New Investigator (DNI) [56499-DNI7]

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Coal char possesses high carbon and low ash features, making it suitable for many industrial uses. Despite the extensive interest in coal utilization, it is the char that has the great influence on the combustion reactivity, where char gasification reaction by CO2 can affect the combustion characteristics during oxy-fuel combustion. In cs simulation this work, a carefully established surrogate coal char model, coupled with the selected ReaxFF force field, is used to simulate the processes of char oxidation by O-2, char gasification by CO2, and char combustion under O-2/CO2 and O-2/N-2 conditions. In comparison with the oxidation process, high CO2 concentration hinders gaseous molecules (C-2-C-4) and light tar (C-5-C-13) from reacting with O-center dot radicals to form smaller carbonaceous molecules. The C-C bond breaking activation energies are 164 and 217 kJ/mol for char-O-2 oxidation and char-CO2 gasification, respectively. Specifically, O-center dot radical and CO2 will adsorb and destroy the edge of representative poly-aromatic hydrocarbon molecules in the char model during char oxidation and gasification. The CO/CO2 molar ratio decays almost exponentially with the extent of char consumption due to the subsequent oxidation of CO in char oxy-fuel combustion. The C-C bond breaking activation energies are 196, 190 and 167 kJ/mol for char combustions under O-2/CO2 ratios of 25%/75%, 50%/50% and 75%/25%, respectively. At the same O-2 concentration, the oxidation ratio under the O-2/CO(2)environment is always higher than that under the O-2/N-2 environment, as a result of the additional O-center dot radicals provided by CO2. This work is devoted to deepen the understanding of the thermochemical conversion process of char at the atomistic level, and is expected to further optimize char utilization.

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