TY - JOUR
T1 - Atomistic insights into the pyrolysis of methyl ethyl ketone peroxide via ReaxFF molecular dynamics simulation
AU - Zhang, Xin
AU - Pan, Yong
AU - Ni, Yuqing
AU - Shi, Xianghui
AU - Jiang, Juncheng
N1 - Publisher Copyright:
© 2022 The Institution of Chemical Engineers
PY - 2022/5
Y1 - 2022/5
N2 - Methyl ethyl ketone peroxide (MEKP) has caused the largest number of incidents among organic peroxides due to the thermal risk. However, the mechanisms of pyrolysis reactions are still unclear. Herein, the pyrolysis of the MEKP dimer and monomer, the predominant existence forms of commercial MEKP, is investigated via the ReaxFF molecular dynamics simulations. The results show that there exist two-stage reactions, consistent with the reported experiments. In the primary reaction, large numbers of butanone, O2, and water are generated. The consumption of O2 will trigger the secondary exothermic reaction, leading to the generation of many small molecules such as H2O, CH2[dbnd]CH2, CH2[dbnd]C[dbnd]O, CO2, and CO. The products of the MEKP dimer and monomer are the same. To clarify the detailed mechanisms of pyrolysis, we investigate the pathways of initial reactions, most of which are associated with the O–O bond scission. The initial reactions are composed of the splitting decomposition and self-reactions with the MEKP itself or the radicals. In addition, the main generation and consumption pathways of the major species are tracked, including butanone, O2, and water. Finally, the apparent activation energies calculated by ReaxFF simulations are consistent with the experimental results. These findings are expected to provide fundamental guidance for the process safety in the production, transportation, and storage of organic peroxides.
AB - Methyl ethyl ketone peroxide (MEKP) has caused the largest number of incidents among organic peroxides due to the thermal risk. However, the mechanisms of pyrolysis reactions are still unclear. Herein, the pyrolysis of the MEKP dimer and monomer, the predominant existence forms of commercial MEKP, is investigated via the ReaxFF molecular dynamics simulations. The results show that there exist two-stage reactions, consistent with the reported experiments. In the primary reaction, large numbers of butanone, O2, and water are generated. The consumption of O2 will trigger the secondary exothermic reaction, leading to the generation of many small molecules such as H2O, CH2[dbnd]CH2, CH2[dbnd]C[dbnd]O, CO2, and CO. The products of the MEKP dimer and monomer are the same. To clarify the detailed mechanisms of pyrolysis, we investigate the pathways of initial reactions, most of which are associated with the O–O bond scission. The initial reactions are composed of the splitting decomposition and self-reactions with the MEKP itself or the radicals. In addition, the main generation and consumption pathways of the major species are tracked, including butanone, O2, and water. Finally, the apparent activation energies calculated by ReaxFF simulations are consistent with the experimental results. These findings are expected to provide fundamental guidance for the process safety in the production, transportation, and storage of organic peroxides.
KW - Methyl ethyl ketone peroxide (MEKP)
KW - Organic peroxide
KW - Pyrolysis
KW - Reaction pathway
KW - Reactive molecular dynamics
UR - http://www.scopus.com/inward/record.url?scp=85126960916&partnerID=8YFLogxK
U2 - 10.1016/j.psep.2022.03.051
DO - 10.1016/j.psep.2022.03.051
M3 - 文章
AN - SCOPUS:85126960916
SN - 0957-5820
VL - 161
SP - 316
EP - 324
JO - Process Safety and Environmental Protection
JF - Process Safety and Environmental Protection
ER -