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基于分子动力学模拟的季戊四醇四硝酸酯(PETN)液体的输运性质

Transport Properties of Liquid Pentaerythritol Tetranitrate (PETN) from Molecular Dynamics Simulations.

作者信息

Perriot Romain, Cawkwell Marc J, Manner Virginia W

机构信息

Theoretical Division, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, United States.

High Explosives Science and Technology, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, United States.

出版信息

J Phys Chem B. 2024 Nov 28;128(47):11730-11738. doi: 10.1021/acs.jpcb.4c05425. Epub 2024 Nov 13.

Abstract

We have used molecular dynamics simulations to determine the transport properties of liquid pentaerythritol tetranitrate (PETN), an important energetic material. The density, ρ, self-diffusion coefficient, , thermal conductivity, κ, and shear viscosity, μ, have been computed over pressures and temperatures relevant to the subshock regime (up to 1000 K and a few GPa), where PETN is known to melt prior to initiation. We find that the thermal conductivity κ(, ) can be represented by a simple analytical function that fits the data points with very good accuracy, even beyond the subshock regime, up to 2000 K and 20 GPa. The self-diffusion coefficient, , exhibits nonmonotonic behavior, with notably the temperature-independent prefactor decreasing by several orders of magnitude between 0 and 2 GPa before remaining nearly constant after, and the activation energy varying little in the subshock regime before increasing linearly beyond. Lastly, the viscosity, μ, is well described by Nahme's law, which is fitted to the MD results and allows us to predict μ(, ) for temperatures and pressures corresponding to the subshock regime. These results can be used to model the response of PETN to low-velocity impacts, where the material melts prior to the first reactions, and thermal conduction and viscosity play a crucial role.

摘要

我们利用分子动力学模拟来确定季戊四醇四硝酸酯(PETN,一种重要的含能材料)液体的输运性质。在与亚冲击区相关的压力和温度范围内(高达1000 K和几个吉帕)计算了密度ρ、自扩散系数、热导率κ和剪切粘度μ,已知PETN在引发前会熔化。我们发现热导率κ(, )可用一个简单的解析函数表示,该函数能非常精确地拟合数据点,甚至超出亚冲击区,高达2000 K和20 GPa。自扩散系数表现出非单调行为,特别是与温度无关的前因子在0至2 GPa之间下降几个数量级,之后几乎保持恒定,并且活化能在亚冲击区内变化很小,之后线性增加。最后,粘度μ可用纳姆定律很好地描述,该定律拟合了分子动力学结果,使我们能够预测亚冲击区对应的温度和压力下的μ(, )。这些结果可用于模拟PETN对低速撞击的响应,在此过程中材料在首次反应前熔化,热传导和粘度起着关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8006/11613450/e1bd361d5456/jp4c05425_0001.jpg

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