TY - JOUR
T1 - Thermal hazard and mechanism study of 5-(4-Pyridyl)tetrazolate (H4-PTZ)
AU - Ding, Xiaoye
AU - Zhao, Shengping
AU - Ni, Lei
AU - Pan, Yong
N1 - Publisher Copyright:
© 2022 by the author(s). Published by Maximum Academic Press on behalf of Nanjing Tech University.
PY - 2022
Y1 - 2022
N2 - Thermal decomposition experiment of 5-(4-Pyridyl)tetrazolate (H4-PTZ) was carried out. The heat flow curve and reaction rate data under different heating rates were obtained. The characteristic parameters were obtained. The apparent activation energy for each individual reaction was calculated by applying different methods. On this basis, the Malek method was used to predict the most probable mechanism function of thermal decomposition reaction of H4-PTZ. The thermal safety parameters, including self-accelerating decomposition temperature, hot spot fire temperature and thermal explosion critical temperature were also predicted. The activation enthalpy, activation entropy, and activation Gibbs free energy of H4-PTZ are calculated. Gaussian16 program was used to optimize the molecular structure, search the transition state and calculate the intrinsic reaction coordinates of H4-PTZ. The most probable decomposition path of H4-PTZ was found, and the activation energy calculated by experiment was compared with that calculated by the theory.
AB - Thermal decomposition experiment of 5-(4-Pyridyl)tetrazolate (H4-PTZ) was carried out. The heat flow curve and reaction rate data under different heating rates were obtained. The characteristic parameters were obtained. The apparent activation energy for each individual reaction was calculated by applying different methods. On this basis, the Malek method was used to predict the most probable mechanism function of thermal decomposition reaction of H4-PTZ. The thermal safety parameters, including self-accelerating decomposition temperature, hot spot fire temperature and thermal explosion critical temperature were also predicted. The activation enthalpy, activation entropy, and activation Gibbs free energy of H4-PTZ are calculated. Gaussian16 program was used to optimize the molecular structure, search the transition state and calculate the intrinsic reaction coordinates of H4-PTZ. The most probable decomposition path of H4-PTZ was found, and the activation energy calculated by experiment was compared with that calculated by the theory.
UR - http://www.scopus.com/inward/record.url?scp=85201542160&partnerID=8YFLogxK
U2 - 10.48130/EMST-2022-0013
DO - 10.48130/EMST-2022-0013
M3 - 文章
AN - SCOPUS:85201542160
SN - 2832-448X
VL - 2
JO - Emergency Management Science and Technology
JF - Emergency Management Science and Technology
M1 - 13
ER -