纳米晶体导热系数的计算

Q3 Materials Science
А.В. Северюхин, О.Ю. Северюхина, А.В. Вахрушев, Alexander V. Severyukhin – CSc, Olesya Yu. Severyukhina – CSc, Alexander V. Vakhrushev, A. V. Severyukhin, O. Severyukhina
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引用次数: 0

摘要

数学建模方法是设计各种类型的纳米系统和分析其中发生的过程的有力工具。请注意,纳米尺度系统数学建模的主要任务是:纳米元素的形成,纳米系统中单个元素的相互作用,动态状态下孤立纳米系统结构的确定,纳米系统与环境相互作用过程中参数的计算,纳米系统宏观参数的计算。在对不同纳米系统的形成和结构过程进行建模的基础上,我们将继续对纳米系统宏观特性的理论基础、建模方法和计算结果进行一致的介绍。本文为计算均相纳米体系的热导率提供了物理基础和数值方法。利用LAMMPS软件对硅基纳米晶体导热系数的分子动力学计算进行了计算机模拟。考虑了描述多粒子MEAM势的方程。导热系数的确定问题分几个步骤解决了。在分子动力学计算中,导热系数的取值可以用多种方法计算。这项工作使用Green - Kubo形式,它将热流的自相关函数与导热系数联系起来。确定了硅基材料导热系数的温度依赖关系。计算了均相硅基纳米体系的热物理特性。给出了不同尺寸体系的导热系数随温度变化的曲线。用MEAM电位法得到的数据与实验数据进行了比较。结果表明,模拟得到的曲线性质和数值与实验数据吻合较好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Calculation of the thermal conductivity coefficient of nanocrystals
Mathematical modeling methods are powerful tools in the design of various types of nanosystems and the analysis of processes taking place in them. Note that the main tasks of mathematical modeling in nanoscale systems are: the formation of nanoelements, the interaction of individual elements of the nanosystem, the determination of the structure of the isolated nanosystem in dynamic states, the calculation of the parameters of the nanosystem during its interaction with the environment, the calculation of the macro parameters of the nanosystem. With this work, we continue the consistent presentation of theoretical foundations, methods of modeling, and results of calculations of macro characteristics of nanosystems, based on the work on modeling of processes of formation and structure of different nanosystems. This paper provides the physical basis as well as numerical methods for calculating the thermal conductivity of homogeneous nanosystems. Computer simulation of the calculation of the thermal conductivity coefficient of silicon-based nanocrystals by molecular dynamics was carried out in the LAMMPS software complex. Equations describing multi-particle MEAM potentials are considered. The problem of determining the thermal conductivity coefficient has been solved in several steps. In molecular dynamic calculations, the value of the thermal conductivity coefficient can be calculated in various ways. This work uses the Green - Kubo formalism, which associates the autocorrelation function of heat flow with the coefficient of thermal conductivity. Temperature dependencies of thermal conductivity coefficient for silicon-based materials are determined. Calculations of thermophysical characteristics of homogeneous silicon-based nanosystems were made. The curves of the temperature dependence of thermal conductivity coefficient for systems of different dimensions are presented. Data obtained using MEAM potentials were compared with experimental data. It was found that the nature of the curves and the values obtained during the simulation are well consistent with the experimental data.
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来源期刊
PNRPU Mechanics Bulletin
PNRPU Mechanics Bulletin Materials Science-Materials Science (miscellaneous)
CiteScore
1.10
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