Prediction of heat of formation and related parameters of high energy materials

被引:70
|
作者
Muthurajan, H. [1 ]
Sivabalan, R.
Talawar, M. B.
Anniyappan, M.
Venugopalan, S.
机构
[1] Armament Res & Dev Estab, Pune 411021, Maharashtra, India
[2] High Energy Mat Res Lab, Pune 411021, Maharashtra, India
关键词
heat of formation; explosion temperature; oxygen balance; computational program; LOTUSES; high energy materials; hazardous materials; explosives;
D O I
10.1016/j.jhazmat.2005.10.009
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Heat of formation is one of the most important parameters in the performance prediction of explosive and propellant formulations and their individual ingredients. This paper reports the development of user-friendly computer code for the prediction of heat of formation based on two approaches. In first methodology, the logic of Benson's Group additivity method and in the second method, the logic of Pedley method was used for predicting the heats of formation of high energy materials (HEMs). The predicted heats of formation by Benson method for various classes of high energy materials gave deviation in the range of 2-10%, whereas nearly 10-15% deviation was observed using Pedley methodology in comparison to experimental values. The linear regression coefficient values (R 2) of 0.9947 and 0.9637 are obtained for heat of formation values predicted by this code using methodologies 1 and 11, respectively. The newly developed code LOTUSES (version 1.3) has been validated by calculating the heats of formation of standard explosives such as TNT, pentaerythritol tetranitrate (PETN), RDX, HMX, etc., To the best of our knowledge, no such code is reported in literature which can predict heats of formation values integrated with performance parameters of HEMs belonging to all categories of organic compounds viz. aliphatic, aromatic and heterocyclic materials. The code can also be used to obtain parameters such as velocity of detonation, C-J pressure, volume of explosion products, power index, temperature of explosion and oxygen balance of HEMs. The code has been developed in Visual Basic having enhanced Windows environment. This software namely LOTUSES 1.3 is an updated version of the earlier ones namely LOTUSES 1.1 and 1.2 which do not cater for the calculation of heat of formation and temperature of explosion of HEMs. LOTUSES 1.3 is, therefore, a totally integrated software for computing most of the vital parameters of HEMs requiring mainly the molecular structural information of an explosive under consideration. (c) 2005 Elsevier B.V. All rights reserved.
引用
收藏
页码:30 / 45
页数:16
相关论文
共 50 条
  • [31] Influence of Substrate Material on the Sensitivity of the Raman Lidar Technique for Detecting Traces of High-Energy Materials
    Bobrovnikov, S. M.
    Gorlov, E. V.
    Zharkov, V. I.
    ATMOSPHERIC AND OCEANIC OPTICS, 2019, 32 (03) : 361 - 365
  • [32] Theoretical design of pyrazine-based high energy materials
    Lin, He
    Chen, Peng-Yuan
    Zhu, Shun-Guan
    Zhang, Lin
    Peng, Xin-Hua
    Li, Kun
    Li, Hong-Zhen
    COMPUTATIONAL AND THEORETICAL CHEMISTRY, 2013, 1013 : 25 - 31
  • [33] High Energy Materials A Brief History and Chemistry of Fireworks and Rocketry
    Naik, Vedang
    Patil, K. C.
    RESONANCE-JOURNAL OF SCIENCE EDUCATION, 2015, 20 (05): : 431 - 444
  • [34] Computational studies on the triazole-based high energy materials
    Ghule, Vikas D.
    COMPUTATIONAL AND THEORETICAL CHEMISTRY, 2012, 992 : 92 - 96
  • [35] Computational studies on tetrazole derivatives as potential high energy materials
    Ghule, Vikas D.
    Radhakrishnan, S.
    Jadhav, Pandurang M.
    STRUCTURAL CHEMISTRY, 2011, 22 (04) : 775 - 782
  • [36] Computational studies on tetrazole derivatives as potential high energy materials
    Vikas D. Ghule
    S. Radhakrishnan
    Pandurang M. Jadhav
    Structural Chemistry, 2011, 22 : 775 - 782
  • [37] Advances in the modelling and simulation of high-energy density materials
    Xi, Hong-Wei
    Dev, S. Prabu
    Lim, Kok Hwa
    JOURNAL OF MOLECULAR MODELING, 2025, 31 (04)
  • [38] 1,2,5-Oxadiazole-Based High-Energy-Density Materials: Synthesis and Performance
    Fershtat, Leonid L.
    Makhova, Nina N.
    CHEMPLUSCHEM, 2020, 85 (01): : 13 - 42
  • [39] Investigation on hydrogen dissociation pressure, heat of formation and strain energy of metal hydrides
    Kojima, Yoshitsugu
    Yamaguchi, Masakuni
    JOURNAL OF ALLOYS AND COMPOUNDS, 2020, 840
  • [40] Assembly of Tetrazolylfuroxan Organic Salts: Multipurpose Green Energetic Materials with High Enthalpies of Formation and Excellent Detonation Performance
    Larin, Alexander A.
    Muravyev, Nikita, V
    Pivkina, Alla N.
    Suponitsky, Kyrill Yu
    Ananyev, Ivan, V
    Khakimov, Dmitry, V
    Fershtat, Leonid L.
    Makhova, Nina N.
    CHEMISTRY-A EUROPEAN JOURNAL, 2019, 25 (16) : 4225 - 4233