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Study on microstructure evolution and oxidation kinetics in Coal-Oil Symbiosis. | LitMetric

AI Article Synopsis

  • The study investigates how the characteristics of Coal-Oil Symbiosis (COS) affect safety management and ecological maintenance in coal mines, focusing on effects of different oil mass percentages.
  • Key findings indicate that as oil content increases, COS shows reduced oxygen absorption, lower ignition temperatures, and significant reductions in activation energy during pyrolysis and combustion, enhancing its combustion characteristics.
  • Additionally, COS has fewer macropores covered by oil, which limits oxygen access, while increasing active hydrocarbon groups, promoting spontaneous combustion, and providing insights for better disaster prevention and environmental protection in mining areas.

Article Abstract

Differences in the spontaneous combustion mechanism characteristics of Coal-Oil Symbiosis (COS) significantly affect coal mines' safety management and ecological environment maintenance. Accordingly, this study aims to investigate COS's macroscopic and microstructural characteristics with different oil mass percentage using simultaneous thermal analysis, low-temperature N adsorption, scanning electron microscopy (SEM), and in-situ Fourier transform infrared spectroscopy (FTIR). The results showed that with the increase of oil mass percentage, the COS displayed the weakening of oxygen absorption and the advance of some characteristic temperatures, and 11.5 °C advanced the maximum weight loss temperature on average. For the 25 % oil sample, the ignition temperature was 9.5 °C lower than that of the raw coal. Additionally, the apparent activation energy of the high oil mass percentage sample was significantly reduced in the pyrolysis and combustion stages, and when the oil mass percentage was 25 %, the activation energies of the two stages decreased by 89 % and 60.65 %, respectively. Compared to raw coal, COS exhibits fewer macropores and surface pores covered by oil, which limits oxygen adsorption. Moreover, COS with higher oil mass percentage had an increase in hydroxyl and aliphatic hydrocarbon groups, and the CH + CH content of COS increased by 69.2 % on average, providing more active groups, thereby promoting spontaneous combustion. This study provides an important reference and theoretical support for further understanding the structural evolution and oxidation kinetic behavior of COS, contributing to disaster prevention and ecological environmental protection in coal-oil coexistence mining areas.

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Source
http://dx.doi.org/10.1016/j.scitotenv.2024.175564DOI Listing

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