Huang Xuanxuan, Xu Yongliang, Wang Yan, Li Yao, Wang Lanyun, Wu Zhengyan
College of Safety Science and Engineering, Henan Polytechnic University, 2001, Century Avenue, Jiaozuo, Henan 454000, China.
Collaborative Innovation Center for Coal Safety Production & High-Efficient-Clean Utilization by Provincial and Ministerial Co-construction, 2001, Century Avenue, Jiaozuo, Henan 454000, China.
ACS Omega. 2021 Mar 4;6(10):6681-6690. doi: 10.1021/acsomega.0c05504. eCollection 2021 Mar 16.
Due to the reported fact that the active functional groups in coal can be dissolved and destroyed by ionic liquids, it is expected that the spontaneous combustion of coal can be affected from a thermodynamic perspective. However, ionic liquids with different thermal stabilities have distinct influences on coal combustion. Here, the thermal stability of long-flame coal in the presence of five pure ionic liquids ([Bmim][BF], [Bmim][Ac], [Bmim][NO], [Hoemim][BF], and [Pmim][BF]) was analyzed by thermogravimetric analysis, and the flammability of the raw coal, pure ionic liquids, and coal-IL mixtures (mass ratio of 1:1) were tested using a cone calorimeter according to the indexes of the time to ignition (TTI), mass loss rate (MLR), heat release rate (HRR), total heat release rate (THR), specific extinction area (SEA), and CO production. It is shown that the TTIs of mixtures containing coal-[Bmim][BF], coal-[Hoemim][BF], and coal-[Pmim][BF] are relatively long, and the MLR, HRR, THR, and SEA values are relatively low, indicating that these fluorine-containing ionic liquids have a better flame-retardant effect than the other two fluorine-free ones, which may be ascribed to their similar role to halogen inhibitors. In addition, the endothermic process of [Bmim][BF], [Hoemim][BF], and [Pmim][BF] can reduce the temperature of the coal surface and delay the ignition time of coal. In contrast, the TTI of coal-[Bmim][NO] and coal-[Bmim][Ac] mixtures is much shorter than that of coal alone, and the MLR, HRR, and THR values are larger. This may be caused by the poor thermal stability of the two nonfluorine ionic liquids that began to decompose and release heat prior to coal, providing a large amount of heat for the low-temperature oxidation of coal and thus accelerating coal oxidation and combustion. Although the F-containing ionic liquids show the ability to inhibit spontaneous combustion of coal to some extent, their organic cations are potentially combustible and release large amounts of heat, smoke, and CO under high temperatures.
由于有报道称煤中的活性官能团可被离子液体溶解和破坏,因此从热力学角度预计煤的自燃会受到影响。然而,具有不同热稳定性的离子液体对煤燃烧的影响各不相同。在此,通过热重分析研究了长焰煤在五种纯离子液体([Bmim][BF]、[Bmim][Ac]、[Bmim][NO]、[Hoemim][BF]和[Pmim][BF])存在下的热稳定性,并使用锥形量热仪根据着火时间(TTI)、质量损失率(MLR)、热释放速率(HRR)、总热释放速率(THR)、比消光面积(SEA)和CO生成量等指标测试了原煤、纯离子液体以及煤 - 离子液体混合物(质量比为1:1)的燃烧性能。结果表明,含煤 - [Bmim][BF]、煤 - [Hoemim][BF]和煤 - [Pmim][BF]的混合物的TTI相对较长,且MLR、HRR、THR和SEA值相对较低,这表明这些含氟离子液体比其他两种不含氟的离子液体具有更好的阻燃效果,这可能归因于它们与卤素抑制剂类似的作用。此外,[Bmim][BF]、[Hoemim][BF]和[Pmim][BF]的吸热过程可降低煤表面温度并延迟煤的着火时间。相比之下,煤 - [Bmim][NO]和煤 - [Bmim][Ac]混合物的TTI比单独煤的TTI短得多,且MLR、HRR和THR值更大。这可能是由于这两种非氟离子液体热稳定性较差,在煤之前就开始分解并释放热量,为煤的低温氧化提供了大量热量,从而加速了煤的氧化和燃烧。尽管含氟离子液体在一定程度上显示出抑制煤自燃的能力,但其有机阳离子具有潜在可燃性,在高温下会释放大量热量、烟雾和CO。