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基于分子的冲击液态硝基甲烷状态方程。

Molecular based equation of state for shocked liquid nitromethane.

作者信息

Desbiens Nicolas, Bourasseau Emeric, Maillet Jean-Bernard, Soulard Laurent

机构信息

Département de Physique Théorique et Appliquée, Commissariat à l'Energie Atomique, Centre DAM - Ile de France, Bruyères-le-Châtel, 91297 Arpajon, France.

出版信息

J Hazard Mater. 2009 Jul 30;166(2-3):1120-6. doi: 10.1016/j.jhazmat.2008.12.083. Epub 2008 Dec 25.

Abstract

An approach is proposed to obtain the equation of state of unreactive shocked liquid nitromethane. Unlike previous major works, this equation of state is not based on extended integration schemes [P.C. Lysne, D.R. Hardesty, Fundamental equation of state of liquid nitromethane to 100 kbar, J. Chem. Phys. 59 (1973) 6512]. It does not follow the way proposed by Winey et al. [J.M. Winey, G.E. Duvall, M.D. Knudson, Y.M. Gupta, Equation of state and temperature measurements for shocked nitromethane, J. Chem. Phys. 113 (2000) 7492] where the specific heat C(v), the isothermal bulk modulus B(T) and the coefficient of thermal pressure (deltaP/deltaT)(v) are modeled as functions of temperature and volume using experimental data. In this work, we compute the complete equation of state by microscopic calculations. Indeed, by means of Monte Carlo molecular simulations, we have proposed a new force field for nitromethane that lead to a good description of shock properties [N. Desbiens, E. Bourasseau, J.-B. Maillet, Potential optimization for the calculation of shocked liquid nitromethane properties, Mol. Sim. 33 (2007) 1061; A. Hervouët, N. Desbiens, E. Bourasseau, J.-B. Maillet, Microscopic approaches to liquid nitromethane detonation properties, J. Phys. Chem. B 112 (2008) 5070]. Particularly, it has been shown that shock temperatures and second shock temperatures are accurately reproduced which is significative of the quality of the potential. Here, thermodynamic derivative properties are computed: specific heats, Grüneisen parameter, sound velocity among others, along the Hugoniot curve. This work constitutes to our knowledge the first determination of the equation of state of an unreactive shocked explosive by molecular simulations.

摘要

本文提出了一种获取未反应冲击液态硝基甲烷状态方程的方法。与之前的主要研究不同,该状态方程并非基于扩展积分方案[P.C. 利斯内,D.R. 哈迪斯蒂,《液态硝基甲烷至100千巴的基本状态方程》,《化学物理杂志》59 (1973) 6512]。它也未遵循维尼等人提出的方法[J.M. 维尼,G.E. 杜瓦尔,M.D. 克努森,Y.M. 古普塔,《冲击硝基甲烷的状态方程及温度测量》,《化学物理杂志》113 (2000) 7492],在该方法中,比热容C(v)、等温体积模量B(T)和热压力系数(deltaP/deltaT)(v)是利用实验数据建模为温度和体积的函数。在本工作中,我们通过微观计算来计算完整的状态方程。实际上,借助蒙特卡罗分子模拟,我们为硝基甲烷提出了一种新的力场,该力场能很好地描述冲击特性[N. 德西昂,E. 布拉萨索,J.-B. 马利特,《用于计算冲击液态硝基甲烷特性的势优化》,《分子模拟》33 (2007) 1061;A. 埃尔武埃,N. 德西昂,E. 布拉萨索,J.-B. 马利特,《液态硝基甲烷爆轰特性的微观方法》,《物理化学杂志B》112 (2008) 5070]。特别地,已表明冲击温度和二次冲击温度能被精确再现,这表明了该势的质量。在此,沿着雨贡纽曲线计算了热力学导数性质:比热容、格林爱森参数、声速等。据我们所知这项工作是首次通过分子模拟确定未反应冲击炸药的状态方程。

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