Investigation on the thermal stability of hexanitrostilbene by thermal analysis and multivariate regression

被引:39
|
作者
Rieckmann, T
Völker, S
Lichtblau, L
Schirra, R
机构
[1] Univ Appl Sci Cologne, Dept Proc Engn & Plant Design, D-50679 Cologne, Germany
[2] Univ Gesamthsch Kassel, Inst Thermal Engn, D-34109 Kassel, Germany
[3] Dynamit Nobel GMBH, D-53839 Troisdorf, Germany
关键词
explosives; hexanitrostilbene (HNS); thermal stability; reaction kinetics; modelling; TGA; DSC; thermolpsis; pyrolysis; multivariate regression;
D O I
10.1016/S0009-2509(00)00355-9
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The thermal decomposition of hexanitrostilbene (HNS), a well-known heal resistant explosive, has been investigated by simultaneous TGA/DTA and DSC at heating rates between 0.05 and 40 degreesC/min. Depending on the temperature time history, the reaction takes place either in the solid-phase or in the liquid-phase after the melting of the sample. To be able to observe the solid-phase reaction, experiments with constant heating rates well below 2.5 degreesC/min have to be performed. Therefore, it is impossible to judge the thermal stability of solid I-INS using kinetic models derived from DSC experiments at heating rates of 10-20 degreesC/min, as it is the standard procedure. In this work, separate global kinetic models have been developed for the thermal decomposition of high bulk density I-INS in the solid, respectively, the liquid-phase by applying the non-linear multivariate regression technique. The multivariate regression technique is an indispensable method for deriving reliable kinetic models. The solid-phase model consists of three consecutive reaction steps: (1) a three-dimensional phase boundary reaction, dominantly a sublimation, (2) an autocatalytic decomposition reaction, and (3) a slow reaction of fractal order, supposedly a high-temperature pyrolysis of primary solid products. The liquid-phase model contains four consecutive reaction steps: (1) a reaction with high activation energy and a small order, simulating the melting, (2) a reaction with low activation energy and an order smaller one; dominantly an evaporation, (3) an autocatalylic reaction, which is the same as the second reaction in the solid-phase model, and (4) a slow reaction resembling the third reaction step of the solid-phase model. The solid-phase model was used to simulate the stability of I-INS under isothermal conditions at temperatures below 300 degreesC. (C) 2001 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:1327 / 1335
页数:9
相关论文
共 50 条
  • [31] Thermal stability investigation of pyridine substituted tosyl oximes
    Ende, DJA
    Ripin, DHB
    Weston, NP
    THERMOCHIMICA ACTA, 2004, 419 (1-2) : 83 - 88
  • [32] Investigation into thermal expansion coefficient, thermal conductivity and thermal stability of Al-graphite composite prepared by powder metallurgy
    Esmati, M.
    Sharifi, H.
    Raeissi, M.
    Atrian, A.
    Rajaee, A.
    JOURNAL OF ALLOYS AND COMPOUNDS, 2019, 773 : 503 - 510
  • [33] Thermal stability and specific heats of coordinating ionic liquids
    Monteiro, Bernardo
    Maria, Leonor
    Cruz, Adelaide
    Carretas, Jose M.
    Marcalo, Joaquim
    Leal, Joao P.
    THERMOCHIMICA ACTA, 2020, 684
  • [34] Thermal stability of acrylonitrile/chlorosulphonated polyethylene rubber blend
    Markovic, Gordana
    Marinovic-Cincovic, Milena
    Vodnik, Vesna
    Radovanovic, Blaga
    Budinski-Simendic, Jaroslava
    Veljkovic, Olivera
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2009, 97 (03) : 999 - 1006
  • [35] Thermal stability of carbon nanotubes
    Xu, F.
    Sun, L. X.
    Zhang, J.
    Qi, Y. N.
    Yang, L. N.
    Ru, H. Y.
    Wang, C. Y.
    Meng, X.
    Lan, X. F.
    Jiao, Q. Z.
    Huang, F. L.
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2010, 102 (02) : 785 - 791
  • [36] Thermal decomposition mechanism of 65% lysine sulfate powder and its thermal stability based on thermal analysis
    Chen, Yue
    Wang, Yujie
    Chen, Xianfeng
    Song, Xiande
    Zhang, Ying
    Tang, Kaixuan
    JOURNAL OF LOSS PREVENTION IN THE PROCESS INDUSTRIES, 2020, 64
  • [37] Thermal analysis techniques for evaluating the thermal stability of battery materials: A comprehensive review
    Pirsaheb, Meghdad
    Seifi, Hooman
    Gholami, Tahereh
    Ganduh, Safaa H.
    Jasim, Layth S.
    Mahdi, Makarim A.
    Salavati-Niasari, Masoud
    JOURNAL OF ANALYTICAL AND APPLIED PYROLYSIS, 2023, 174
  • [38] Effect of trans-polyoctenamer on thermal stability of rubbers determined by thermal analysis
    Kleps, T
    Piaskiewicz, M
    Parasiewicz, W
    Slusarski, L
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 1997, 49 (01) : 351 - 359
  • [39] Effect oftrans-polyoctenamer on thermal stability of rubbers determined by thermal analysis
    T. Kleps
    M. Piaskiewicz
    W. Parasiewicz
    L. Ślusarski
    Journal of thermal analysis, 1997, 49 : 351 - 359
  • [40] Using thermal analysis and kinetics calculation method to assess the thermal stability of azobisdimethylvaleronitrile
    Chen-Rui Cao
    Shang-Hao Liu
    Jen-Hao Chi
    Yet-Pole I
    Chi-Min Shu
    Journal of Thermal Analysis and Calorimetry, 2019, 138 : 2853 - 2863