TY - JOUR
T1 - Thermal hazard characteristics and essential mechanism study of 1-hydroxybenzotriazole
T2 - Thermodynamic study combined DFT simulation
AU - Zhang, Han
AU - Jiang, Juncheng
AU - Fei, Miao
AU - Ni, Lei
AU - Hang, Yao
N1 - Publisher Copyright:
© 2022 The Institution of Chemical Engineers
PY - 2022/12
Y1 - 2022/12
N2 - 1-Hydroxybenzotriazole (HOBT) as an important fine chemical has been used as reactants, reagents or catalysts in over 6 million chemical synthesis reactions. The thermal decomposition characteristics of HOBT in non-isothermal, isothermal and adiabatic conditions were investigated through differential scanning calorimetry, thermogravimetric analyzer, and accelerating rate calorimeter. The apparent activation energy, thermal safety parameters, and the decomposition reaction pattern of HOBT pyrolysis were obtained based on adiabatic accelerating calorimeter experimental data. HOBT pyrolysis is a rapid exothermic process with large amounts of gas produced, and HOBT can decompose at a temperature substantially lower than the onset temperature. The severity and probability of HOBT runaway reaction were assessed. The pyrolysis mechanism paths of HOBT were explored by using TG-MS and TG-FTIR experiments couple with density functional theory calculations. The main decomposition products of HOBT were N2, NO, C2H2, C6H6, CO, HCN, and CO2 gases. This study provides guidance for safe production and application of HOBT, and formulating emergency plans for related hazards.
AB - 1-Hydroxybenzotriazole (HOBT) as an important fine chemical has been used as reactants, reagents or catalysts in over 6 million chemical synthesis reactions. The thermal decomposition characteristics of HOBT in non-isothermal, isothermal and adiabatic conditions were investigated through differential scanning calorimetry, thermogravimetric analyzer, and accelerating rate calorimeter. The apparent activation energy, thermal safety parameters, and the decomposition reaction pattern of HOBT pyrolysis were obtained based on adiabatic accelerating calorimeter experimental data. HOBT pyrolysis is a rapid exothermic process with large amounts of gas produced, and HOBT can decompose at a temperature substantially lower than the onset temperature. The severity and probability of HOBT runaway reaction were assessed. The pyrolysis mechanism paths of HOBT were explored by using TG-MS and TG-FTIR experiments couple with density functional theory calculations. The main decomposition products of HOBT were N2, NO, C2H2, C6H6, CO, HCN, and CO2 gases. This study provides guidance for safe production and application of HOBT, and formulating emergency plans for related hazards.
KW - Accelerating rate calorimeter
KW - Density functional theory
KW - Pyrolysis mechanism path
KW - Thermal decomposition characteristics
KW - Thermal safety
UR - http://www.scopus.com/inward/record.url?scp=85140299596&partnerID=8YFLogxK
U2 - 10.1016/j.psep.2022.10.043
DO - 10.1016/j.psep.2022.10.043
M3 - 文章
AN - SCOPUS:85140299596
SN - 0957-5820
VL - 168
SP - 713
EP - 722
JO - Process Safety and Environmental Protection
JF - Process Safety and Environmental Protection
ER -