Title :
Kinetic Study on Gaseous Hydrocarbon Release of Le-ping Bark Coal during Low Temperature Pyrolytic Process in O2-Enriched Conditions
Author :
Yu Shui-jun ; Zheng Li-gang ; Zhang Yu-gui ; Xie Feng-cheng
Author_Institution :
Sch. of Safety Sci. & Eng., Henan Polytech. Univ., Jiaozuo, China
Abstract :
Gas release characteristics of coal during low temperature oxidation process were investigated in order to prevent coal spontaneous combustion. Based on the basic principle that the release rate of gaseous products increases during coal pyrolysis in O2-enriched conditions, kinetic characteristic of low-weight molecular hydrocarbons for Le-ping bark coal were experimentally studied by using a coal self-heating experimental facility. The results show that the logarithmic release rate of seven kinds of C1 ~ C4 low-weight molecular hydrocarbons (ln¿) for Le-ping bark coal is linearly correlated with the reciprocal of absolute temperature (1/T) within the temperature range of 293 ~ 673 K. The kinetics of coal during their self-heating oxidation processes were consistent with a typical Arrhenius S.A. kinetic characteristic. The apparent activation energies (Ea) of seven hydrocarbons are follows by ascending order: Ea(C2H6)<Ea(C3H8)<Ea(n-C4H8)<Ea(C2H4)¿Ea(CH4)<Ea(i-C4H8)<Ea(C3H6), while the gas release critical temperatures (Tm) are Tm(C3H8)<Tm(n-C4H8)<Tm(i-C4H8)<Tm(C2H6)<Tm(C2H4)¿Tm(CH4)<Tm(C3H6). The various hydrocarbons demonstrated the different gas release critical temperatures, release rates and the apparent activation energies.
Keywords :
coal; heating; mining; occupational safety; oxidation; pyrolysis; reaction kinetics; Le-ping bark coal; activation energies; coal mine safely; coal pyrolysis; coal self-heating experimental facility; coal spontaneous combustion; gas release characteristics; gaseous hydrocarbon release; kinetic characteristics; kinetic study; low temperature oxidation process; low temperature pyrolytic process; low-weight molecular hydrocarbons; self-heating oxidation process; temperature 293 K to 673 K; Chemicals; Combustion; Fires; Hydrocarbons; Kinetic theory; Oxidation; Physics; Product safety; Production; Temperature distribution; aliphatic hydrocarbons; bark coal; kinetics; low temperature pyrolysis; oxygen enriched; release;
Conference_Titel :
Energy and Environment Technology, 2009. ICEET '09. International Conference on
Conference_Location :
Guilin, Guangxi
Print_ISBN :
978-0-7695-3819-8
DOI :
10.1109/ICEET.2009.181