论文标题

碳纳米管参数,边界条件以及代表体积对纳米复合材料的渗透和电渗透性的影响

Influence of carbon nanotubes parameters, boundary conditions, and scaling of the represetative volume on percolation and electric permeability of a nanocomposite

论文作者

Gudkov, N. A., Lomov, S. V., Akhatov, I. S., Abaimov, S. G.

论文摘要

该论文旨在开发数字双胞胎,以建模多壁碳纳米管(MWCNT)/聚合物纳米复合材料的电导率。对具有CNT的均匀和各向同性分布的代表体积元件(RVE)中边界条件的各种配方进行了比较分析。研究了三种类型的边界条件:RVE的均匀边界电势,两个rves链的均匀边界电势以及周期性的边界电位。已经证明,要正确计算材料的电导率,需要对RVE的周期性边界条件实施;相反,使用统一的边界电势会导致电导的显着高估。对于CNT的不同体积分数(VF),确定了平均电导率对RVE尺寸的敏感性。例如,发现RVE的5微米尺寸对于1%VF的CNT,直径为50 nm和5微米的平均长度是最佳的。除了RVE大小外,我们还验证模型输出如何响应CNT几何形状的调整参数(例如曲率和扭转)(扭曲)。我们发现,对于正确的电导率建模,必须存在第二个参数,因为仅使用曲率会导致CNT离散化期间对段尺寸的依赖性,因此必须进行正确的电导率建模。在文献中,固有的MWCNT电阻率的影响通常由于电子的弹道传输而被丢弃可忽略不计。为了验证这一假设,我们检查了结果对CNT有限电阻率的敏感性。对于不同的模型参数集,计算了渗透阈值和临界指数。研究了模型有限大小对渗滤阈值的影响。

The paper aims at the development of a digital twin modelling the electrical conductivity of multi-wall carbon nanotube (MWCNT)/polymer nanocomposite. A comparative analysis is conducted for various formulations of boundary conditions in the representative volume element (RVE) with uniform and isotropic distribution of CNTs. Three types of boundary conditions studied: uniform boundary potentials for an RVE, uniform boundary potentials for a chain of two RVEs, and periodic boundary potentials. It is demonstrated that to calculate the electrical conductivity of the material correctly, the implementation of periodic boundary conditions for the RVE is required; on the contrary, the use of uniform boundary potentials leads to significant overestimation in conductance. The sensitivity of average conductivity to the RVE size is determined for different volume fractions (Vf) of CNTs. For example, the 5 micrometer size of the RVE is found to be optimal for 1% Vf of CNTs with 50 nm diameter and 5 micrometer average length. Beside the RVE size, we verify how model output changes in response to tuning parameters of the CNT geometry, such as curvature and torsion (twist). We find the presence of the second parameter, torsion, to be imperative for correct conductivity modelling since usage of the curvature alone leads to unavoidable dependence on segment size during CNT discretization. In literature, the influence of intrinsic MWCNT resistivity is often discarded as negligible due to ballistic transport of electrons. To verify this assumption, we check the sensitivity of results to finite resistivity of CNTs. Percolation threshold and the critical index are calculated for different sets of model parameters. The model finite-size effect on the percolation threshold is investigated.

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