Huo Yujia, Zhu Hongqing, He Xin
School of Emergency Management and Safety Engineering, China University of Mining and Technology (Beijing), Beijing 100083, China.
ACS Omega. 2022 May 24;7(22):18552-18568. doi: 10.1021/acsomega.2c01229. eCollection 2022 Jun 7.
In order to cut off the chain reaction in the process of coal oxidation at low temperature (COLT), butylated hydroxytoluene (BHT) was used as an inhibitor to explore its inhibition effect and mechanism. In this paper, in situ Fourier transform infrared spectroscopy, electron paramagnetic resonance, and gas production of COLT experiments were conducted to compare the inhibited coal sample (BHT-Coal) with the raw coal. The results showed that BHT can effectively inhibit the formation of active free radicals, reduce the content of active alkoxy, carbonyl, and hydroxyl groups, increase the production temperature of CO, CO, and CH, and reduce the concentration. The crossing point temperature increased from 132.3 to 157.4 °C, indicating that BHT can reduce the spontaneous combustion tendency of the raw coal. To explore the inhibition mechanism of BHT on COLT, five typical active free-radical models were established, and their active sites, active bonds, and thermodynamic parameters were calculated according to the density functional theory. The results showed that the highly active H atoms of the phenolic hydroxyl group in BHT can combine with active free radicals to generate stable compounds, and the activation energy of each reaction is small, which can occur under normal temperature and pressure. The inhibition mechanism of BHT is to reduce the concentration of the free radicals, so as to weaken the chain reaction strength during the COLT. This study provides a reference for the development and utilization of inhibitors.
为切断煤低温氧化过程中的链式反应,采用2,6-二叔丁基对甲酚(BHT)作为抑制剂,探究其抑制效果及作用机理。通过原位傅里叶变换红外光谱、电子顺磁共振和煤低温氧化产气实验,对比了添加抑制剂的煤样(BHT-煤)与原煤。结果表明,BHT可有效抑制活性自由基的生成,降低活性烷氧基、羰基和羟基含量,提高CO、CO₂和CH₄的产气温度并降低其浓度。交叉点温度从132.3℃升高至157.4℃,表明BHT可降低原煤的自燃倾向性。为探究BHT对煤低温氧化的抑制机理,构建了5种典型活性自由基模型,依据密度泛函理论计算其活性位点、活性键及热力学参数。结果表明,BHT中酚羟基的高活性H原子可与活性自由基结合生成稳定化合物,各反应活化能较小,常温常压下即可发生。BHT的抑制机理是降低自由基浓度,从而减弱煤低温氧化过程中的链式反应强度。该研究为抑制剂的开发利用提供了参考。