TY - JOUR
T1 - 新 型 耐 热 含 能 钙 钛 矿 化 合 物(C6H14N2)[Na(ClO4)3]的 热 分 解 行 为
AU - Zhou, Jing
AU - Zhang, Jun Lin
AU - Ding, Li
AU - Chen, Shao Li
AU - Qiu, Li Li
AU - Zhu, Yan Long
AU - Wang, Bo Zhou
N1 - Publisher Copyright:
© 2022 Institute of Chemical Materials, China Academy of Engineering Physics. All rights reserved.
PY - 2022/7/25
Y1 - 2022/7/25
N2 - (C6H14N2)[Na(ClO4)3]is a representative of energetic perovskite compounds. It is necessary to clarify the corresponding thermal decomposition behavior, thermal decomposition mechanism and sensitivity characteristics in order to promote the application in formulations. Thermal decomposition parameters, including heat release amount and decomposition temperatures, were obtained by simultaneous differential scanning calorimetric and thermogravimetric analyses methods. The relevant decomposition mechanism was analyzed by kinetic simulation calculations. The decomposition products and decomposition processes of(C6H14N2)[Na(ClO4)3]were explored by DSC·TGFTIRMS coupled technique combined with insitu infrared technology. The parameters of thermal sensitivity, friction sensitivity and impact sensitivity were obtained by national military standard methods. The results show that the heat of decomposition of(C6H14N2)[Na(ClO4)3]is 4227 J·g-1 at the heating rate of 10 °C·min-1 and the decomposition temperature reaches 345 °C, which is higher than that of most active energetic materials, including Hexogen(RDX), ogen(HMX)and hexanitrohexaazoisowuzane(CL20), indicating an outstanding thermal stability. The decomposition products analysis shows that the cubic cagelike skeleton effectively stabilizes the internal organic molecule, resulting in the high thermal stability of(C6H14N2)[Na(ClO4)3]. In addition, the outgassing amount of(C6H14N2)[Na(ClO4)3]heated at 100 °C for 48 h is about 0.04 mL·g-1, and the impact sensitivity and mechanical sensitivity are 32% and 80%, respectively, which are better than RDX and HMX.
AB - (C6H14N2)[Na(ClO4)3]is a representative of energetic perovskite compounds. It is necessary to clarify the corresponding thermal decomposition behavior, thermal decomposition mechanism and sensitivity characteristics in order to promote the application in formulations. Thermal decomposition parameters, including heat release amount and decomposition temperatures, were obtained by simultaneous differential scanning calorimetric and thermogravimetric analyses methods. The relevant decomposition mechanism was analyzed by kinetic simulation calculations. The decomposition products and decomposition processes of(C6H14N2)[Na(ClO4)3]were explored by DSC·TGFTIRMS coupled technique combined with insitu infrared technology. The parameters of thermal sensitivity, friction sensitivity and impact sensitivity were obtained by national military standard methods. The results show that the heat of decomposition of(C6H14N2)[Na(ClO4)3]is 4227 J·g-1 at the heating rate of 10 °C·min-1 and the decomposition temperature reaches 345 °C, which is higher than that of most active energetic materials, including Hexogen(RDX), ogen(HMX)and hexanitrohexaazoisowuzane(CL20), indicating an outstanding thermal stability. The decomposition products analysis shows that the cubic cagelike skeleton effectively stabilizes the internal organic molecule, resulting in the high thermal stability of(C6H14N2)[Na(ClO4)3]. In addition, the outgassing amount of(C6H14N2)[Na(ClO4)3]heated at 100 °C for 48 h is about 0.04 mL·g-1, and the impact sensitivity and mechanical sensitivity are 32% and 80%, respectively, which are better than RDX and HMX.
KW - (CHN)[Na(ClO)]
KW - DSC·TG-FTIR-MS
KW - in-situ infrared technology
KW - perovskite
KW - thermal decomposition
UR - http://www.scopus.com/inward/record.url?scp=85138137948&partnerID=8YFLogxK
U2 - 10.11943/CJEM2022052
DO - 10.11943/CJEM2022052
M3 - 文章
AN - SCOPUS:85138137948
SN - 1006-9941
VL - 30
SP - 681
EP - 686
JO - Hanneng Cailiao/Chinese Journal of Energetic Materials
JF - Hanneng Cailiao/Chinese Journal of Energetic Materials
IS - 7
ER -