论文标题
温度密集物质计算的状态数据库的第一原理方程
First-Principles Equation of State Database for Warm Dense Matter Computation
论文作者
论文摘要
我们通过结合路径积分蒙特卡洛的结果和密度功能性分子动力学模拟元素H,HE,HE,HE,HE,B,C,C,N,N,NE,NA,NA,MG,AL和SI以及COMP,B4C,B4C,BN,CH4,CC2,C2,CC2,CC2,CC2,CC2,CC2,CC2,CC2,CC2,CC2,CC2,CC2,CC2,CC2,CC2,CC2,CC2,CC2,CH2,CC2,CC2,CC2,CC2,CH2,CC2,,,组合元素积分和密度功能分子动力学模拟,将物质的结果组合在一起,为物质的状态数据库(FPEOS)数据库组合在一起。 MGSIO3。对于所有这些材料,我们在密度 - 温度范围内提供压力和内部能量,范围为〜0.5至50 g/cc,从〜10^4到10^9 K,基于〜5000个不同的第一原理模拟。我们计算L和K壳离子化状态中的等距,绝热和休克Hugoniot曲线。调用线性混合近似,我们研究了高密度和温度下混合物的性能。我们得出了水和氧化铝以及碳氧,氦气和Ch-Silicon混合物的雨果曲线。我们将H2O,H2O2,Al2O3,CO和CO2的最大冲击压缩率分别为4.61、4.64、4.64、4.89和4.83。最后,我们使用FPEOS数据库来确定所有可用二进制混合物的最大冲击压缩点。我们确定的混合物比其最终成员更高的电击压缩比。我们讨论了压力温度和颗粒震动速度空间中所有混合物的常见趋势。在补充材料中,我们提供了所有FPEOS表,以及用于插值,Hugoniot计算和各种热力学功能图的计算机代码。
We put together a first-principles equation of state (FPEOS) database for matter at extreme conditions by combining results from path integral Monte Carlo and density functional molecular dynamics simulations of the elements H, He, B, C, N, O, Ne, Na, Mg, Al and Si as well as the compounds LiF, B4C, BN, CH4, CH2, C2H3, CH, C2H, MgO, and MgSiO3. For all these materials, we provide the pressure and internal energy over a density-temperature range from ~0.5 to 50 g/cc and from ~10^4 to 10^9 K, which are based on ~5000 different first-principles simulations. We compute isobars, adiabats and shock Hugoniot curves in the regime of L and K shell ionization. Invoking the linear mixing approximation, we study the properties of mixtures at high density and temperature. We derive the Hugoniot curves for water and alumina as well as for carbon-oxygen, helium-neon, and CH-silicon mixtures. We predict the maximal shock compression ratios of H2O, H2O2, Al2O3, CO, and CO2 to be 4.61, 4.64, 4.64, 4.89, and 4.83, respectively. Finally we use the FPEOS database to determine the points of maximum shock compression for all available binary mixtures. We identify mixtures that reach higher shock compression ratios than their endmembers. We discuss trends common to all mixtures in pressure-temperature and particle-shock velocity spaces. In the supplementary material, we provide all FPEOS tables as well as computer codes for interpolation, Hugoniot calculations, and plots of various thermodynamic functions.