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Transient conduction for thermal diffusivity simulation of a graphene/polymer and its full-field validation with image reconstruction

机译:石墨烯/聚合物的热扩散模拟瞬态传导及其与图像重建的全场验证

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摘要

A 3D finite element model is presented to simulate the thermal transport properties of a polymer composite made of GradeM25 graphene nanoplatelets (GnP) in a low-viscosity bisphenol-A epoxy resin. This is a multi-scale approach that consists of a unit cell, a representative volume element (RVE) and a macroscopic specimen model. There is a hierarchy of structural scales, where the response at one size level is described by one (or more) parameters and passed to the next level up. At the unit cell level, the material nanocharacteristics are used to calculate the local thermal response, while the material architecture is captured by the RVE. A statistical sample is studied and the average thermal response is compared to the macroscopic experimental data. Afterwards, the experimental reinforcement distribution is applied to the macro specimen model. The thermal diffusivity mapping was obtained numerically and compared to the flash method measurements following the CEN/CWA 16799 standard, through the decomposition and reconstruction of the fields with orthogonal Zernike polynomials and their comparison on a linear correlation plot. Finally, the simulation of the transient thermal response was successfully validated under both generic and full-field comparison. This research work is, therefore, proposing a validated simulation tool to estimate the thermal response of polymer nanocomposites, while being engineer-friendly to promote advanced material design that eliminates the trial and error approach.
机译:提出了一种3D有限元模型,以模拟在低粘度双酚-A环氧树脂中由Gradem25石墨烯纳米片(GNP)制成的聚合物复合物的热传输性能。这是一种多尺度方法,由单位单元,代表体元素(RVE)和宏观标本模型组成。存在结构尺度的层次,其中一个尺寸级别的响应由一个(或更多个)参数描述并传递给下一个级别。在单元电池级,材料纳米特征用于计算局部热响应,而材料架构被rve捕获。研究了统计样品,并将平均热响应与宏观实验数据进行比较。然后,实验强化分布应用于宏观标本模型。通过在CEN / CWA 16799标准之后的闪蒸方法测量,通过分解和重建具有正交Zernike多项式的磁场的分解及其对线性相关图的比较来实现热扩散型映射。最后,在通用和全场比较下成功验证了瞬态热响应的仿真。因此,该研究是提出了验证的仿真工具来估算聚合物纳米复合材料的热响应,同时促进消除试验和误差方法的先进材料设计。

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